[158] | 1 | /**************************************************************************************** |
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| 2 | File : drivers.c |
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| 3 | Written by Alain Greiner & Nicolas Pouillon |
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| 4 | Date : december 2010 |
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| 5 | |
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| 6 | Basic drivers used by the GIET, that is running |
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| 7 | on the MIPS32 processor architecture. |
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| 8 | |
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| 9 | The supported peripherals are: |
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| 10 | - the SoClib pibus_multi_tty |
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| 11 | - the SocLib pibus_timer |
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| 12 | - the SocLib pibus_dma |
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| 13 | - The SoCLib pibus_icu |
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| 14 | - The SoCLib pibus_gcd |
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| 15 | - The SoCLib pibus_frame_buffer |
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| 16 | - The SoCLib pibus_block_device |
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| 17 | |
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| 18 | The following global parameters must be defined in the ldscript. |
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| 19 | - NB_CLUSTERS : number of clusters |
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| 20 | - NB_PROCS : number of processor per cluster |
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| 21 | - NB_NTASKS : max number of tasks per processor |
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| 22 | - NB_LOCKS : max number of supported spin_locks |
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| 23 | - NB_TIMERS : max number of timers per processor |
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| 24 | |
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| 25 | The follobing base addresses must be defined in the ldscript |
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| 26 | - seg_icu_base |
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| 27 | - seg_timer_base |
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| 28 | - seg_tty_base |
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| 29 | - seg_gcd_base |
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| 30 | - seg_dma_base |
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| 31 | - seg_locks_base |
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| 32 | - seg_fb_base |
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| 33 | - seg_ioc_base |
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| 34 | ****************************************************************************************/ |
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| 35 | |
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| 36 | #include "drivers.h" |
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| 37 | #include "icu.h" |
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| 38 | #include "block_device.h" |
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| 39 | #include "dma.h" |
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| 40 | |
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| 41 | struct plouf; |
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| 42 | |
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| 43 | ////////////////////////////////////////////////////////////// |
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| 44 | // various informations that must be defined in ldscript |
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| 45 | ////////////////////////////////////////////////////////////// |
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| 46 | extern struct plouf seg_icu_base; |
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| 47 | extern struct plouf seg_timer_base; |
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| 48 | extern struct plouf seg_tty_base; |
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| 49 | extern struct plouf seg_gcd_base; |
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| 50 | extern struct plouf seg_dma_base; |
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| 51 | extern struct plouf seg_locks_base; |
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| 52 | extern struct plouf seg_fb_base; |
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| 53 | extern struct plouf seg_ioc_base; |
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| 54 | |
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| 55 | extern struct plouf NB_CLUSTERS; |
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| 56 | extern struct plouf NB_PROCS; |
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| 57 | extern struct plouf NB_TASKS; |
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| 58 | extern struct plouf NB_TIMERS; |
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| 59 | extern struct plouf NB_LOCKS; |
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| 60 | |
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| 61 | #define in_drivers __attribute__((section (".drivers"))) |
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| 62 | #define in_unckdata __attribute__((section (".unckdata"))) |
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| 63 | |
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| 64 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 65 | // Global uncachable variables for synchronization between drivers and ISRs |
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| 66 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 67 | |
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| 68 | in_unckdata int volatile _dma_status[256]; |
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| 69 | in_unckdata int volatile _dma_busy[256] = { 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 70 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 71 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 72 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 73 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 74 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 75 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 76 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 77 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 78 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 79 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 80 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 81 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 82 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 83 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 84 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 }; |
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| 85 | |
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| 86 | in_unckdata int volatile _ioc_lock = 0; |
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| 87 | in_unckdata int volatile _ioc_done = 0; |
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| 88 | in_unckdata int volatile _ioc_status; |
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| 89 | |
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| 90 | in_unckdata char volatile _tty_get_buf[256]; |
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| 91 | in_unckdata int volatile _tty_get_full[256] = { 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 92 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 93 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 94 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 95 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 96 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 97 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 98 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 99 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 100 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 101 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 102 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 103 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 104 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 105 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 106 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 }; |
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| 107 | |
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| 108 | in_unckdata char volatile _tty_put_buf[256]; |
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| 109 | in_unckdata int volatile _tty_put_full[256] = { 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 110 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 111 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 112 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 113 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 114 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 115 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 116 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 117 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 118 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 119 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 120 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 121 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 122 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 123 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 124 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 }; |
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| 125 | |
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| 126 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 127 | // Global uncachable variables for inter-task barriers |
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| 128 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 129 | |
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[173] | 130 | in_unckdata int volatile _barrier_initial_value[16] = { 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 }; |
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| 131 | in_unckdata int volatile _barrier_count[16] = { 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 }; |
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| 132 | in_unckdata int volatile _barrier_lock[16] = { 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 }; |
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[158] | 133 | |
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| 134 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 135 | // Global uncachable variables for spin_locks using LL/C instructions |
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| 136 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 137 | |
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| 138 | in_unckdata int volatile _spin_lock[256] = { 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 139 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 140 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 141 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 142 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 143 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 144 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 145 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 146 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 147 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 148 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 149 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 150 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 151 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 152 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, |
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| 153 | 0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 }; |
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| 154 | |
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| 155 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 156 | // mempcy() |
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| 157 | // GCC requires this function. Taken from MutekH. |
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| 158 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 159 | __attribute((used)) |
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| 160 | in_drivers static void *memcpy(void *_dst, const void *_src, unsigned int size) |
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| 161 | { |
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| 162 | unsigned int *dst = _dst; |
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| 163 | const unsigned int *src = _src; |
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| 164 | if ( ! ((unsigned int)dst & 3) && ! ((unsigned int)src & 3) ) |
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| 165 | while (size > 3) { |
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| 166 | *dst++ = *src++; |
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| 167 | size -= 4; |
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| 168 | } |
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| 169 | |
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| 170 | unsigned char *cdst = (unsigned char*)dst; |
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| 171 | unsigned char *csrc = (unsigned char*)src; |
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| 172 | |
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| 173 | while (size--) { |
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| 174 | *cdst++ = *csrc++; |
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| 175 | } |
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| 176 | return _dst; |
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| 177 | } |
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| 178 | |
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| 179 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 180 | // _procid() |
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| 181 | // Access CP0 and returns processor ident |
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[173] | 182 | // No more than 1024 processors... |
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[158] | 183 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 184 | in_drivers unsigned int _procid() |
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| 185 | { |
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| 186 | unsigned int ret; |
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| 187 | asm volatile( "mfc0 %0, $15, 1": "=r"(ret) ); |
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[173] | 188 | return (ret & 0x3FF); |
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[158] | 189 | } |
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| 190 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 191 | // _segment_increment() |
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| 192 | // Access CP0 to get the procid, and returns the address increment to access |
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| 193 | // various peripherals (TTY, TIMER, ICU, DMA), in case of multiprocessors architectures. |
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| 194 | // It uses the NB_PROCS and NB_CLUSTERS parameters to compute this increment: |
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| 195 | // - increment = cluster_id*cluster_increment + local_id*local_increment |
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| 196 | // - cluster_id = procid / NB_PROCS |
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| 197 | // - local_id = procid % NB_PROCS |
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| 198 | // - cluster_increment = 4G / NB_CLUSTERS |
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| 199 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 200 | in_drivers unsigned int _segment_increment(unsigned int local_increment) |
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| 201 | { |
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| 202 | unsigned int nprocs = (unsigned int)&NB_PROCS; |
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| 203 | unsigned int nclusters = (unsigned int)&NB_CLUSTERS; |
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| 204 | unsigned int cluster_increment = (0x80000000/nclusters)*2; |
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| 205 | unsigned int pid = _procid(); |
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| 206 | return (pid / nprocs)*cluster_increment + (pid % nprocs)*local_increment; |
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| 207 | } |
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| 208 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 209 | // _proctime() |
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| 210 | // Access CP0 and returns processor time |
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| 211 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 212 | in_drivers unsigned int _proctime() |
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| 213 | { |
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| 214 | unsigned int ret; |
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| 215 | asm volatile( "mfc0 %0, $9": "=r"(ret) ); |
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| 216 | return ret; |
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| 217 | } |
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| 218 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 219 | // _procnumber() |
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| 220 | // Returns the number of processsors controled by the GIET |
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| 221 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 222 | in_drivers unsigned int _procnumber() |
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| 223 | { |
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| 224 | return (unsigned int)&NB_PROCS * (unsigned int)&NB_CLUSTERS; |
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| 225 | } |
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| 226 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 227 | // _it_mask() |
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| 228 | // Access CP0 and mask IRQs |
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| 229 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 230 | in_drivers void _it_mask() |
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| 231 | { |
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| 232 | int tmp; |
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| 233 | asm volatile("mfc0 %0, $12" : "=r" (tmp) ); |
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| 234 | asm volatile("ori %0, %0, 1" : "=r" (tmp) ); |
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| 235 | asm volatile("mtc0 %0, $12" : "=r" (tmp) ); |
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| 236 | } |
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| 237 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 238 | // _it_enable() |
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| 239 | // Access CP0 and enable IRQs |
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| 240 | //////////////////////////////////////////////////////////////////////////////////////// |
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| 241 | in_drivers void _it_enable() |
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| 242 | { |
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| 243 | int tmp; |
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| 244 | asm volatile("mfc0 %0, $12" : "=r" (tmp) ); |
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| 245 | asm volatile("addi %0, %0, -1" : "=r" (tmp) ); |
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| 246 | asm volatile("mtc0 %0, $12" : "=r" (tmp) ); |
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| 247 | } |
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| 248 | ////////////////////////////////////////////////////////////////////// |
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| 249 | // _dcache_buf_invalidate() |
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| 250 | // Invalidate all cache lines corresponding to a memory buffer. |
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| 251 | // This is used by the block_device driver. |
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| 252 | ///////////////////////////////////////////////////////////////////////// |
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| 253 | in_drivers void _dcache_buf_invalidate(const void * buffer, size_t size) |
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| 254 | { |
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| 255 | size_t i; |
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| 256 | size_t dcache_line_size; |
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| 257 | |
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| 258 | // retrieve dcache line size from config register (bits 12:10) |
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| 259 | asm volatile("mfc0 %0, $16, 1" : "=r" (dcache_line_size)); |
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| 260 | |
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| 261 | dcache_line_size = 2 << ((dcache_line_size>>10) & 0x7); |
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| 262 | |
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| 263 | // iterate on lines to invalidate each one of them |
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| 264 | for ( i=0; i<size; i+=dcache_line_size ) |
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| 265 | asm volatile(" cache %0, %1" |
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| 266 | : |
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| 267 | :"i" (0x11), "R" (*((char*)buffer+i))); |
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| 268 | } |
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| 269 | |
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| 270 | ///////////////////////////////////////////////////////////////////////// |
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| 271 | // _itoa_dec() |
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| 272 | // convert a 32 bits unsigned int to a string of 10 decimal characters. |
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| 273 | ///////////////////////////////////////////////////////////////////////// |
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| 274 | in_drivers void _itoa_dec(unsigned val, char* buf) |
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| 275 | { |
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| 276 | const char DecTab[] = "0123456789"; |
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| 277 | unsigned int i; |
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| 278 | for( i=0 ; i<10 ; i++ ) |
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| 279 | { |
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| 280 | if( (val!=0) || (i==0) ) buf[9-i] = DecTab[val % 10]; |
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| 281 | else buf[9-i] = 0x20; |
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| 282 | val /= 10; |
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| 283 | } |
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| 284 | } |
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| 285 | ////////////////////////////////////////////////////////////////////////// |
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| 286 | // _itoa_hex() |
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| 287 | // convert a 32 bits unsigned int to a string of 8 hexadecimal characters. |
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| 288 | /////////////////////////////////////////////////////////////////////////// |
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| 289 | in_drivers void _itoa_hex(int val, char* buf) |
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| 290 | { |
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| 291 | const char HexaTab[] = "0123456789ABCD"; |
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| 292 | unsigned int i; |
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| 293 | for( i=0 ; i<8 ; i++ ) |
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| 294 | { |
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| 295 | buf[7-i] = HexaTab[val % 16]; |
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| 296 | val /= 16; |
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| 297 | } |
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| 298 | } |
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| 299 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 300 | // MULTI_TIMER component |
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| 301 | // Each processor can handle up to NB_TIMERS independant timers. |
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| 302 | // The segment base address is defined as |
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| 303 | // seg_timer_base + segment_increment(NB_TIMERS*16) + index*16 |
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| 304 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 305 | // _timer_write() |
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| 306 | // Write a 32 bits word in a memory mapped register of the MULTI_TIMER |
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| 307 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 308 | in_drivers int _timer_write(size_t timer_index, size_t register_index, int value) |
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| 309 | { |
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| 310 | int* timer_address; |
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| 311 | size_t ntimers = (size_t)&NB_TIMERS; |
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| 312 | unsigned int base = (unsigned int)&seg_timer_base; |
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| 313 | unsigned int increment = _segment_increment(ntimers*TIMER_SPAN*4); |
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| 314 | |
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| 315 | if( timer_index >= ntimers) return -1; |
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| 316 | if( register_index >= TIMER_SPAN ) return -1; |
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| 317 | |
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| 318 | timer_address = (int*)(base + increment + timer_index*TIMER_SPAN*4); |
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| 319 | timer_address[register_index] = value; // write word |
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| 320 | return 0; |
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| 321 | } |
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| 322 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 323 | // _timer_read() |
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| 324 | // Read a 32 bits word in a memory mapped register of the MULTI_TIMER |
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| 325 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 326 | in_drivers int _timer_read(size_t timer_index, size_t register_index, int* buffer) |
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| 327 | { |
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| 328 | int* timer_address; |
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| 329 | size_t ntimers = (size_t)&NB_TIMERS; |
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| 330 | unsigned int base = (unsigned int)&seg_timer_base; |
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| 331 | unsigned int increment = _segment_increment(ntimers*TIMER_SPAN*4); |
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| 332 | |
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| 333 | if( timer_index >= ntimers) return -1; |
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| 334 | if( register_index >= TIMER_SPAN ) return -1; |
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| 335 | |
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| 336 | if( timer_index >= ntimers) return -1; |
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| 337 | if( register_index >= TIMER_SPAN ) return -1; |
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| 338 | |
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| 339 | timer_address = (int*)(base + increment + timer_index*TIMER_SPAN*4); |
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| 340 | *buffer = timer_address[register_index]; // read word |
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| 341 | return 0; |
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| 342 | } |
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| 343 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 344 | // MULTI_TTY COMPONENT |
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| 345 | // The total number of TTYs is equal to NB_CLUSTERS * NB_PROCS * NB_TASKS. |
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| 346 | // - tty_address = seg_tty_base + _segment_increment(NB_TASKS*16) + task_id*16 |
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| 347 | // - tty_index = proc_id*NB_TASKS + task_id |
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| 348 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 349 | // _tty_write() |
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| 350 | // Write one or several characters directly from a fixed length user buffer |
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| 351 | // to the TTY_WRITE register of the TTY controler. |
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| 352 | // It doesn't use the TTY_PUT_IRQ interrupt and the associated kernel buffer. |
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| 353 | // This is a non blocking call : it test the TTY_STATUS register. |
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| 354 | // If the TTY_STATUS_WRITE bit is set, the transfer stops and the function |
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| 355 | // returns the number of characters that have been actually written. |
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| 356 | // It returns -1 in case of error (proc_id or task index too large) |
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| 357 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 358 | in_drivers int _tty_write(char* buffer, int length) |
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| 359 | { |
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| 360 | char* tty_address; |
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| 361 | size_t ntasks = (size_t)&NB_TASKS; |
---|
| 362 | size_t nprocs = (size_t)&NB_PROCS; |
---|
[173] | 363 | size_t nclusters = (size_t)&NB_CLUSTERS; |
---|
| 364 | unsigned int base = (unsigned int)&seg_tty_base; |
---|
[158] | 365 | unsigned int increment = _segment_increment(ntasks*TTY_SPAN*4); |
---|
| 366 | size_t pid = _procid(); |
---|
| 367 | int nwritten = 0; |
---|
[173] | 368 | size_t tid; |
---|
[158] | 369 | int i; |
---|
| 370 | |
---|
[173] | 371 | if( ntasks == 0 ) tid = 0; |
---|
| 372 | else tid = _current_task_array[pid]; |
---|
| 373 | |
---|
| 374 | if( tid >= ntasks ) return -1; |
---|
[158] | 375 | if( pid >= nprocs*nclusters ) return -1; |
---|
| 376 | |
---|
| 377 | tty_address = (char*)(base + increment + tid*TTY_SPAN*4); |
---|
[248] | 378 | //tty_address = (char*)(base + tid*TTY_SPAN*4); |
---|
[158] | 379 | |
---|
| 380 | for ( i=0 ; i < length ; i++ ) |
---|
| 381 | { |
---|
| 382 | if((tty_address[TTY_STATUS*4] & 0x2) == 0x2) break; |
---|
| 383 | else |
---|
| 384 | { |
---|
| 385 | tty_address[TTY_WRITE*4] = buffer[i]; // write character |
---|
| 386 | nwritten++; |
---|
| 387 | } |
---|
| 388 | } |
---|
| 389 | return nwritten; |
---|
| 390 | } |
---|
| 391 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 392 | // _tty_read() |
---|
| 393 | // Fetch one character directly from the TTY_READ register of the TTY controler, |
---|
| 394 | // and writes this character to the user buffer. |
---|
| 395 | // It doesn't use the TTY_GET_IRQ interrupt and the associated kernel buffer. |
---|
| 396 | // This is a non blocking call : it returns 0 if the register is empty, |
---|
| 397 | // and returns 1 if the register is full. |
---|
| 398 | // It returns -1 in case of error (proc_id or task_id too large or length != 1) |
---|
| 399 | // The length argument is not used in this implementation, and has been |
---|
| 400 | // introduced for future implementations. |
---|
| 401 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 402 | in_drivers int _tty_read(char* buffer, int length) |
---|
| 403 | { |
---|
| 404 | char* tty_address; |
---|
| 405 | size_t ntasks = (size_t)&NB_TASKS; |
---|
| 406 | size_t nprocs = (size_t)&NB_PROCS; |
---|
| 407 | size_t nclusters = (size_t)&NB_CLUSTERS; |
---|
[173] | 408 | unsigned int base = (unsigned int)&seg_tty_base; |
---|
[158] | 409 | unsigned int increment = _segment_increment(ntasks*TTY_SPAN*4); |
---|
| 410 | size_t pid = _procid(); |
---|
[173] | 411 | size_t tid; |
---|
[158] | 412 | |
---|
[173] | 413 | if( pid > 7 ) tid = 0; |
---|
| 414 | else tid = _current_task_array[pid]; |
---|
| 415 | |
---|
| 416 | if( length != 1) return -1; |
---|
| 417 | if( pid >= nprocs*nclusters ) return -1; |
---|
| 418 | if( tid >= ntasks ) return -1; |
---|
[158] | 419 | |
---|
| 420 | tty_address = (char*)(base + increment + tid*TTY_SPAN*4); |
---|
| 421 | |
---|
| 422 | if((tty_address[TTY_STATUS*4] & 0x1) == 0x1) |
---|
| 423 | { |
---|
| 424 | buffer[0] = tty_address[TTY_READ*4]; |
---|
| 425 | return 1; |
---|
| 426 | } |
---|
| 427 | else |
---|
| 428 | { |
---|
| 429 | return 0; |
---|
| 430 | } |
---|
| 431 | } |
---|
| 432 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 433 | // _tty_read_irq() |
---|
| 434 | // iAS it uses the TTY_GET_IRQ interrupt and the associated kernel buffer, |
---|
| 435 | // that has been written by the ISR, this function does not access the TTY registers. |
---|
| 436 | // It fetch one single character from the _tty_get_buf[tty_index] kernel buffer, writes |
---|
| 437 | // this character to the user buffer, and reset the _tty_get_full[tty_index] buffer. |
---|
| 438 | // This is a non blocking call : it returns 0 if the kernel buffer is empty, |
---|
| 439 | // and returns 1 if the buffer is full. |
---|
| 440 | // It returns -1 in case of error (proc_id or task_id too large, or length != 1) |
---|
| 441 | // The length argument is not used in this implementation, and has been |
---|
| 442 | // introduced for future implementations. |
---|
| 443 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 444 | in_drivers int _tty_read_irq(char* buffer, int length) |
---|
| 445 | { |
---|
| 446 | int pid = _procid(); |
---|
| 447 | int ntasks = (int)&NB_TASKS; |
---|
| 448 | int nprocs = (int)&NB_PROCS; |
---|
| 449 | int nclusters = (int)&NB_CLUSTERS; |
---|
| 450 | int tty_index; |
---|
[173] | 451 | int tid; |
---|
[158] | 452 | |
---|
[173] | 453 | if( pid > 7 ) tid = 0; |
---|
| 454 | else tid = _current_task_array[pid]; |
---|
| 455 | |
---|
[158] | 456 | if( length != 1) return -1; |
---|
| 457 | if( pid >= nprocs*nclusters ) return -1; |
---|
| 458 | if( tid >= ntasks ) return -1; |
---|
| 459 | |
---|
| 460 | tty_index = pid*ntasks + tid; |
---|
| 461 | if( _tty_get_full[tty_index] == 0 ) return 0; |
---|
| 462 | |
---|
| 463 | *buffer = _tty_get_buf[tty_index]; |
---|
| 464 | _tty_get_full[tty_index] = 0; |
---|
| 465 | return 1; |
---|
| 466 | } |
---|
| 467 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 468 | // _exit() |
---|
| 469 | // Exit (suicide) after printing message on a TTY terminal. |
---|
| 470 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 471 | in_drivers int _exit() |
---|
| 472 | { |
---|
| 473 | char buf[] = "\n\n!!! Exit Processor !!!\n"; |
---|
| 474 | int pid = _procid(); |
---|
| 475 | |
---|
| 476 | buf[24] = '0'; |
---|
| 477 | buf[25] = 'x'; |
---|
| 478 | buf[26] = (char)((pid>>8) & 0xF) + 0x30; |
---|
| 479 | buf[27] = (char)((pid>>4) & 0xF) + 0x30; |
---|
| 480 | buf[28] = (char)(pid & 0xF) + 0x30; |
---|
| 481 | _tty_write(buf, 36); |
---|
| 482 | |
---|
| 483 | while(1) asm volatile("nop"); // infinite loop... |
---|
| 484 | } |
---|
| 485 | |
---|
| 486 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 487 | // _icu_write() |
---|
| 488 | // Write a 32 bits word in a memory mapped register of the ICU peripheral |
---|
| 489 | // The base address is defined by the processor ID |
---|
| 490 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 491 | in_drivers int _icu_write(size_t register_index, int value) |
---|
| 492 | { |
---|
| 493 | int* icu_address; |
---|
| 494 | unsigned int base = (int)&seg_icu_base; |
---|
| 495 | unsigned int increment = _segment_increment(ICU_SPAN*4); |
---|
| 496 | |
---|
| 497 | if( register_index >= ICU_SPAN ) return -1; |
---|
| 498 | |
---|
| 499 | icu_address = (int*)(base + increment); |
---|
| 500 | icu_address[register_index] = value; // write word |
---|
| 501 | return 0; |
---|
| 502 | } |
---|
| 503 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 504 | // _icu_read() |
---|
| 505 | // Read a 32 bits word in a memory mapped register of the ICU peripheral |
---|
| 506 | // The ICU base address is defined by the processor ID |
---|
| 507 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 508 | in_drivers int _icu_read(size_t register_index, int* buffer) |
---|
| 509 | { |
---|
| 510 | int* icu_address; |
---|
| 511 | unsigned int base = (int)&seg_icu_base; |
---|
| 512 | unsigned int increment = _segment_increment(ICU_SPAN*4); |
---|
| 513 | |
---|
| 514 | if( register_index >= ICU_SPAN ) return -1; |
---|
| 515 | |
---|
| 516 | icu_address = (int*)(base + increment); |
---|
| 517 | *buffer = icu_address[register_index]; // read word |
---|
| 518 | return 0; |
---|
| 519 | } |
---|
| 520 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 521 | // _gcd_write() |
---|
| 522 | // Write a 32 bits word in a memory mapped register of the GCD coprocessor |
---|
| 523 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 524 | in_drivers int _gcd_write(size_t register_index, int value) |
---|
| 525 | { |
---|
| 526 | int* gcd_address; |
---|
| 527 | if( register_index >= 4 ) return -1; |
---|
| 528 | |
---|
| 529 | gcd_address = (int*)&seg_gcd_base; |
---|
| 530 | gcd_address[register_index] = value; // write word |
---|
| 531 | return 0; |
---|
| 532 | } |
---|
| 533 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 534 | // _gcd_read() |
---|
| 535 | // Read a 32 bits word in a memory mapped register of the GCD coprocessor |
---|
| 536 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 537 | in_drivers int _gcd_read(size_t register_index, int* buffer) |
---|
| 538 | { |
---|
| 539 | int* gcd_address; |
---|
| 540 | if( register_index >= 4 ) return -1; |
---|
| 541 | |
---|
| 542 | gcd_address = (int*)&seg_gcd_base; |
---|
| 543 | *buffer = gcd_address[register_index]; // read word |
---|
| 544 | return 0; |
---|
| 545 | } |
---|
| 546 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 547 | // _locks_write() |
---|
| 548 | // Release a software spin-lock |
---|
| 549 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 550 | in_drivers int _locks_write(size_t index) |
---|
| 551 | |
---|
| 552 | { |
---|
| 553 | int max = (int)&NB_LOCKS; |
---|
| 554 | if( index >= max ) return -1; |
---|
| 555 | |
---|
| 556 | _spin_lock[index] = 0; |
---|
| 557 | return 0; |
---|
| 558 | } |
---|
| 559 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 560 | // _locks_read() |
---|
| 561 | // Try to take a software spin-lock. |
---|
| 562 | // This is a blocking call, as there is a busy-waiting loop, |
---|
| 563 | // until the lock is granted to the requester. |
---|
| 564 | // There is an internal delay of about 100 cycles between |
---|
| 565 | // two successive lock read, to avoid bus saturation. |
---|
| 566 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 567 | in_drivers int _locks_read(size_t index) |
---|
| 568 | { |
---|
| 569 | int max = (int)&NB_LOCKS; |
---|
| 570 | if( index >= max ) return -1; |
---|
| 571 | |
---|
[248] | 572 | register int delay = ((_proctime() +_procid()) & 0xF) << 4; |
---|
| 573 | register int * plock = (int *) &_spin_lock[index]; |
---|
[158] | 574 | |
---|
| 575 | asm volatile ("_locks_llsc: \n" |
---|
| 576 | "ll $2, 0(%0) \n" // $2 <= _locks_lock |
---|
| 577 | "bnez $2, _locks_delay \n" // random delay if busy |
---|
| 578 | "li $3, 1 \n" // prepare argument for sc |
---|
| 579 | "sc $3, 0(%0) \n" // try to set _locks_busy |
---|
| 580 | "bnez $3, _locks_ok \n" // exit if atomic |
---|
| 581 | "_locks_delay: \n" |
---|
| 582 | "move $4, %1 \n" // $4 <= delay |
---|
| 583 | "_locks_loop: \n" |
---|
| 584 | "addi $4, $4, -1 \n" // $4 <= $4 - 1 |
---|
| 585 | "beqz $4, _locks_loop \n" // test end delay |
---|
| 586 | "j _locks_llsc \n" // retry |
---|
| 587 | "_locks_ok: \n" |
---|
| 588 | ::"r"(plock),"r"(delay):"$2","$3","$4"); |
---|
| 589 | return 0; |
---|
| 590 | } |
---|
| 591 | ////////////////////////////////////////////////////////////////////////////////////////// |
---|
| 592 | // I/O BLOCK_DEVICE |
---|
| 593 | // The three functions below use the three variables _ioc_lock _ioc_done, |
---|
[178] | 594 | // and _ioc_status for synchronisation. |
---|
[158] | 595 | // - As the IOC component can be used by several programs running in parallel, |
---|
| 596 | // the _ioc_lock variable guaranties exclusive access to the device. |
---|
| 597 | // The _ioc_read() and _ioc_write() functions use atomic LL/SC to get the lock. |
---|
| 598 | // and set _ioc_lock to a non zero value. |
---|
| 599 | // The _ioc_write() and _ioc_read() functions are blocking, polling the _ioc_lock |
---|
| 600 | // variable until the device is available. |
---|
| 601 | // - When the tranfer is completed, the ISR routine activated by the IOC IRQ |
---|
| 602 | // set the _ioc_done variable to a non-zero value. Possible address errors detected |
---|
| 603 | // by the IOC peripheral are reported by the ISR in the _ioc_status variable. |
---|
| 604 | // The _ioc_completed() function is polling the _ioc_done variable, waiting for |
---|
| 605 | // tranfer conpletion. When the completion is signaled, the _ioc_completed() function |
---|
| 606 | // reset the _ioc_done variable to zero, and releases the _ioc_lock variable. |
---|
| 607 | // |
---|
| 608 | // In a multi-tasks environment, this polling policy must be replaced by a |
---|
| 609 | // descheduling policy for the requesting process. |
---|
| 610 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 611 | // _ioc_get_lock() |
---|
| 612 | // This blocking function is used by the _ioc_read() and _ioc_write() functions |
---|
| 613 | // to get _ioc_lock using LL/SC. |
---|
| 614 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 615 | in_drivers void _ioc_get_lock() |
---|
| 616 | { |
---|
| 617 | register unsigned int* plock = (unsigned int*)&_ioc_lock; |
---|
| 618 | |
---|
[178] | 619 | asm volatile ("_ioc_llsc: \n" |
---|
[158] | 620 | "ll $2, 0(%0) \n" // $2 <= _ioc_lock |
---|
[178] | 621 | "bnez $2, _ioc_llsc \n" // retry if busy |
---|
| 622 | "li $3, 1 \n" // prepare argument for sc |
---|
[158] | 623 | "sc $3, 0(%0) \n" // try to set _ioc_busy |
---|
[178] | 624 | "beqz $3, _ioc_llsc \n" // retry if not atomic |
---|
| 625 | ::"r"(plock):"$2","$3"); |
---|
[158] | 626 | } |
---|
| 627 | ////////////////////////////////////////////////////////////////////////////////////// |
---|
| 628 | // _ioc_write() |
---|
| 629 | // Transfer data from a memory buffer to a file on the block_device. |
---|
| 630 | // - lba : first block index on the disk |
---|
| 631 | // - buffer : base address of the memory buffer |
---|
| 632 | // - count : number of blocks to be transfered |
---|
| 633 | // The source buffer must be in user address space. |
---|
| 634 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 635 | in_drivers int _ioc_write(size_t lba, void* buffer, size_t count) |
---|
| 636 | { |
---|
| 637 | volatile unsigned int* ioc_address = (unsigned int*)&seg_ioc_base; |
---|
| 638 | |
---|
| 639 | // buffer must be in user space |
---|
| 640 | // size_t block_size = ioc_address[BLOCK_DEVICE_BLOCK_SIZE]; |
---|
| 641 | // if( ( (size_t)buffer + block_size*count ) >= 0x80000000 ) return -1; |
---|
| 642 | // if( ( (size_t)buffer ) >= 0x80000000 ) return -1; |
---|
| 643 | |
---|
| 644 | // get the lock |
---|
| 645 | _ioc_get_lock(); |
---|
| 646 | |
---|
| 647 | // block_device configuration |
---|
| 648 | ioc_address[BLOCK_DEVICE_BUFFER] = (int)buffer; |
---|
| 649 | ioc_address[BLOCK_DEVICE_COUNT] = count; |
---|
| 650 | ioc_address[BLOCK_DEVICE_LBA] = lba; |
---|
| 651 | ioc_address[BLOCK_DEVICE_IRQ_ENABLE] = 1; |
---|
| 652 | ioc_address[BLOCK_DEVICE_OP] = BLOCK_DEVICE_WRITE; |
---|
| 653 | return 0; |
---|
| 654 | } |
---|
| 655 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 656 | // _ioc_read() |
---|
| 657 | // Transfer data from a file on the block device to a memory buffer. |
---|
| 658 | // - lba : first block index on the disk |
---|
| 659 | // - buffer : base address of the memory buffer |
---|
| 660 | // - count : number of blocks to be transfered |
---|
| 661 | // The destination buffer must be in user address space. |
---|
| 662 | // All cache lines corresponding to the the target buffer must be invalidated |
---|
| 663 | // for cache coherence. |
---|
| 664 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 665 | in_drivers int _ioc_read(size_t lba, void* buffer, size_t count) |
---|
| 666 | { |
---|
| 667 | volatile unsigned int* ioc_address = (unsigned int*)&seg_ioc_base; |
---|
| 668 | |
---|
| 669 | // buffer must be in user space |
---|
| 670 | // size_t block_size = ioc_address[BLOCK_DEVICE_BLOCK_SIZE]; |
---|
| 671 | // if( ( (size_t)buffer + block_size*count ) >= 0x80000000 ) return -1; |
---|
| 672 | // if( ( (size_t)buffer ) >= 0x80000000 ) return -1; |
---|
| 673 | |
---|
| 674 | // get the lock |
---|
| 675 | _ioc_get_lock(); |
---|
| 676 | |
---|
| 677 | // block_device configuration |
---|
| 678 | ioc_address[BLOCK_DEVICE_BUFFER] = (int)buffer; |
---|
| 679 | ioc_address[BLOCK_DEVICE_COUNT] = count; |
---|
| 680 | ioc_address[BLOCK_DEVICE_LBA] = lba; |
---|
| 681 | ioc_address[BLOCK_DEVICE_IRQ_ENABLE] = 1; |
---|
| 682 | ioc_address[BLOCK_DEVICE_OP] = BLOCK_DEVICE_READ; |
---|
| 683 | |
---|
| 684 | return 0; |
---|
| 685 | } |
---|
| 686 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 687 | // _ioc_completed() |
---|
| 688 | // This blocking function cheks completion of an I/O transfer and reports errors. |
---|
| 689 | // It returns 0 if the transfer is successfully completed. |
---|
| 690 | // It returns -1 if an error has been reported. |
---|
| 691 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 692 | in_drivers int _ioc_completed() |
---|
| 693 | { |
---|
| 694 | // waiting for completion |
---|
| 695 | while (_ioc_done == 0) { asm volatile("nop"); } |
---|
| 696 | |
---|
| 697 | // reset synchronisation variables |
---|
| 698 | _ioc_done = 0; |
---|
| 699 | _ioc_lock = 0; |
---|
| 700 | |
---|
| 701 | // return errors |
---|
| 702 | if((_ioc_status != BLOCK_DEVICE_READ_SUCCESS) && |
---|
| 703 | (_ioc_status != BLOCK_DEVICE_WRITE_SUCCESS)) return -1; |
---|
| 704 | else return 0; |
---|
| 705 | } |
---|
| 706 | |
---|
| 707 | ////////////////////////////////////////////////////////////////////////////////////// |
---|
| 708 | // FRAME_BUFFER |
---|
| 709 | // The _fb_sync_write & _fb_sync_read functions use a memcpy strategy to implement |
---|
| 710 | // the transfer between a data buffer (user space) and the frame buffer (kernel space). |
---|
| 711 | // They are blocking until completion of the transfer. |
---|
| 712 | ////////////////////////////////////////////////////////////////////////////////////// |
---|
| 713 | // _fb_sync_write() |
---|
| 714 | // Transfer data from an user buffer to the frame_buffer device with a memcpy. |
---|
| 715 | // - offset : offset (in bytes) in the frame buffer |
---|
| 716 | // - buffer : base address of the memory buffer |
---|
| 717 | // - length : number of bytes to be transfered |
---|
| 718 | ////////////////////////////////////////////////////////////////////////////////////// |
---|
| 719 | in_drivers int _fb_sync_write(size_t offset, void* buffer, size_t length) |
---|
| 720 | { |
---|
| 721 | volatile char* fb = (char*)(void*)&seg_fb_base + offset; |
---|
| 722 | char* ub = buffer; |
---|
| 723 | size_t i; |
---|
| 724 | |
---|
| 725 | // buffer must be in user space |
---|
| 726 | // if( ( (size_t)buffer + length ) >= 0x80000000 ) return -1; |
---|
| 727 | // if( ( (size_t)buffer ) >= 0x80000000 ) return -1; |
---|
| 728 | |
---|
| 729 | // memory copy |
---|
| 730 | for(i=0 ; i<length ; i++) fb[i] = ub[i]; |
---|
| 731 | return 0; |
---|
| 732 | } |
---|
| 733 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 734 | // _fb_sync_read() |
---|
| 735 | // Transfer data from the frame_buffer device to an user buffer with a memcpy. |
---|
| 736 | // - offset : offset (in bytes) in the frame buffer |
---|
| 737 | // - buffer : base address of the memory buffer |
---|
| 738 | // - length : number of bytes to be transfered |
---|
| 739 | ////////////////////////////////////////////////////////////////////////////////////// |
---|
| 740 | in_drivers int _fb_sync_read(size_t offset, void* buffer, size_t length) |
---|
| 741 | { |
---|
| 742 | volatile char* fb = (char*)(void*)&seg_fb_base + offset; |
---|
| 743 | char* ub = buffer; |
---|
| 744 | size_t i; |
---|
| 745 | |
---|
| 746 | // buffer must be in user space |
---|
| 747 | // if( ( (size_t)buffer + length ) >= 0x80000000 ) return -1; |
---|
| 748 | // if( ( (size_t)buffer ) >= 0x80000000 ) return -1; |
---|
| 749 | |
---|
| 750 | // memory copy |
---|
| 751 | for(i=0 ; i<length ; i++) ub[i] = fb[i]; |
---|
| 752 | return 0; |
---|
| 753 | } |
---|
| 754 | ////////////////////////////////////////////////////////////////////////////////////// |
---|
| 755 | // The _fb_write() and _fb_read() functions use the MULTI_DMA |
---|
| 756 | // coprocessor to transfer data between the user buffer and the frame buffer. |
---|
| 757 | // The _fb_completed() function, use a polling policy to test |
---|
| 758 | // the global variables _dma_busy[i] and detect the transfer completion. |
---|
| 759 | // As each processor can have it's private DMA, there is up to 256 _dma_busy[i] |
---|
| 760 | // set/reset variables that are indexed by the proc_id. |
---|
| 761 | // The _dma_busy variable is reset by the ISR associated to the DMA IRQ. |
---|
| 762 | /////////////////////////////////////////////////////////////////////////////////////// |
---|
| 763 | // _fb_write() |
---|
| 764 | // Transfer data from an user buffer to the frame_buffer device using DMA. |
---|
| 765 | // - offset : offset (in bytes) in the frame buffer |
---|
| 766 | // - buffer : base address of the memory buffer |
---|
| 767 | // - length : number of bytes to be transfered |
---|
| 768 | ////////////////////////////////////////////////////////////////////////////////////// |
---|
| 769 | in_drivers int _fb_write(size_t offset, void* buffer, size_t length) |
---|
| 770 | { |
---|
| 771 | int* dma_address; |
---|
[248] | 772 | unsigned int base = (unsigned int) &seg_dma_base; |
---|
[158] | 773 | unsigned int increment = _segment_increment(DMA_SPAN*4); |
---|
[248] | 774 | char * fb = (char *) &seg_fb_base + offset; |
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| 775 | unsigned int delay = (_proctime() & 0xF) << 4; |
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[158] | 776 | unsigned int pid = _procid(); |
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| 777 | unsigned int i; |
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| 778 | |
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| 779 | |
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| 780 | // checking buffer boundaries (bytes) |
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| 781 | // if( ( (size_t)buffer + length ) >= 0x80000000 ) return -1; |
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| 782 | // if( ( (size_t)buffer ) >= 0x80000000 ) return -1; |
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| 783 | |
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| 784 | // waiting until DMA device is available |
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| 785 | while (_dma_busy[pid] != 0) |
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| 786 | { |
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| 787 | for( i=0 ; i<delay ; i++) // busy waiting |
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| 788 | { // with a pseudo random |
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| 789 | asm volatile("nop"); // delay between bus accesses |
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| 790 | } |
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| 791 | } |
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| 792 | _dma_busy[pid] = 1; |
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| 793 | |
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| 794 | dma_address = (int*)(base + increment); |
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| 795 | |
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| 796 | // DMA configuration |
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| 797 | dma_address[DMA_IRQ_DISABLE] = 0; |
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| 798 | dma_address[DMA_SRC] = (int)buffer; |
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| 799 | dma_address[DMA_DST] = (int)fb; |
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| 800 | dma_address[DMA_LEN] = (int)length; |
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| 801 | return 0; |
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| 802 | } |
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| 803 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 804 | // _fb_read() |
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| 805 | // Transfer data from the frame_buffer device to an user buffer using DMA. |
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| 806 | // - offset : offset (in bytes) in the frame buffer |
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| 807 | // - buffer : base address of the memory buffer |
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| 808 | // - length : number of bytes to be transfered |
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| 809 | ////////////////////////////////////////////////////////////////////////////////////// |
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| 810 | in_drivers int _fb_read(size_t offset, void* buffer, size_t length) |
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| 811 | { |
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| 812 | int* dma_address; |
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| 813 | unsigned int base = (unsigned int)&seg_dma_base; |
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| 814 | unsigned int increment = _segment_increment(DMA_SPAN*4); |
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| 815 | char* fb = (char*)&seg_fb_base + offset; |
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| 816 | unsigned int delay = (_proctime() & 0xF) << 4; |
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| 817 | unsigned int pid = _procid(); |
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| 818 | unsigned int i; |
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| 819 | |
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| 820 | // checking buffer boundaries (bytes) |
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| 821 | // if( ( (size_t)buffer + length ) >= 0x80000000 ) return -1; |
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| 822 | // if( ( (size_t)buffer ) >= 0x80000000 ) return -1; |
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| 823 | |
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| 824 | // waiting until DMA device is available |
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| 825 | while (_dma_busy[pid] != 0) |
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| 826 | { |
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| 827 | for( i=0 ; i<delay ; i++) // busy waiting |
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| 828 | { // with a pseudo random |
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| 829 | asm volatile("nop"); // delay between bus accesses |
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| 830 | } |
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| 831 | } |
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| 832 | _dma_busy[pid] = 1; |
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| 833 | |
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| 834 | dma_address = (int*)(base + increment); |
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| 835 | |
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| 836 | // DMA configuration |
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| 837 | dma_address[DMA_IRQ_DISABLE] = 0; |
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| 838 | dma_address[DMA_SRC] = (int)fb; |
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| 839 | dma_address[DMA_DST] = (int)buffer; |
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| 840 | dma_address[DMA_LEN] = (int)length; |
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| 841 | return 0; |
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| 842 | } |
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| 843 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 844 | // _fb_completed() |
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| 845 | // This blocking function cheks completion of a DMA transfer to or fom the frame buffer. |
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| 846 | // The MIPS32 wait instruction stall the processor until the next interrupt. |
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| 847 | // It returns 0 if the transfer is successfully completed |
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| 848 | // It returns -1 if an error has been reported. |
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| 849 | /////////////////////////////////////////////////////////////////////////////////////// |
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| 850 | in_drivers int _fb_completed() |
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| 851 | { |
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| 852 | unsigned int pid = _procid(); |
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| 853 | |
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| 854 | while (_dma_busy[pid] != 0) |
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| 855 | { |
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| 856 | asm volatile("nop"); |
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| 857 | } |
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| 858 | if(_dma_status[pid] == DMA_SUCCESS) return 0; |
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| 859 | else return _dma_status[pid]; |
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| 860 | } |
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| 861 | ////////////////////////////////////////////////////////////////////////////////////// |
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| 862 | // _barrier_init() |
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| 863 | // This function makes a cooperative initialisation of the barrier: |
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[173] | 864 | // - barrier_count[index] <= N |
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| 865 | // - barrier_lock[index] <= 0 |
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| 866 | // All tasks try to initialize the barrier, but the initialisation |
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[158] | 867 | // is done by only one task, using LL/SC instructions. |
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[173] | 868 | // This cooperative initialisation is questionnable, |
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| 869 | // bcause the barrier can ony be initialised once... |
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[158] | 870 | ////////////////////////////////////////////////////////////////////////////////////// |
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| 871 | in_drivers int _barrier_init(unsigned int index, unsigned int value) |
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| 872 | { |
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| 873 | |
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| 874 | register int* pinit = (int*)&_barrier_initial_value[index]; |
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| 875 | register int* pcount = (int*)&_barrier_count[index]; |
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[173] | 876 | register int* plock = (int*)&_barrier_lock[index]; |
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[158] | 877 | |
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| 878 | if ( index > 7 ) return 1; |
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| 879 | |
---|
| 880 | // parallel initialisation using atomic instructions LL/SC |
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| 881 | asm volatile ("_barrier_init_test: \n" |
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[173] | 882 | "ll $2, 0(%0) \n" // read barrier_inital_value |
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[158] | 883 | "bnez $2, _barrier_init_done \n" |
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[173] | 884 | "move $3, %3 \n" |
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| 885 | "sc $3, 0(%0) \n" // try to write barrier_initial_value |
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[158] | 886 | "beqz $3, _barrier_init_test \n" |
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[173] | 887 | "move $3, %3 \n" |
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| 888 | "sw $3, 0(%1) \n" // barrier_count <= barrier_initial_value |
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| 889 | "move $3, $0 \n" // |
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| 890 | "sw $3, 0(%2) \n" // barrier_lock <= 0 |
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[158] | 891 | "_barrier_init_done: \n" |
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[173] | 892 | ::"r"(pinit),"r"(pcount),"r"(plock),"r"(value):"$2","$3"); |
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[158] | 893 | return 0 ; |
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| 894 | } |
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| 895 | ////////////////////////////////////////////////////////////////////////////////////// |
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| 896 | // _barrier_wait() |
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[173] | 897 | // This blocking function uses a busy_wait technics (on the barrier_lock value), |
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[158] | 898 | // because the GIET does not support dynamic scheduling/descheduling of tasks. |
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[173] | 899 | // The barrier state is actually defined by two variables: |
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| 900 | // _barrier_count[index] define the number of particpants that are waiting |
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| 901 | // _barrier_lock[index] define the bool variable whose value is polled |
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| 902 | // The last participant change the value of _barrier_lock[index] to release the barrier... |
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| 903 | // There is at most 16 independant barriers, and an error is returned |
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| 904 | // if the barrier index is larger than 15. |
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[158] | 905 | ////////////////////////////////////////////////////////////////////////////////////// |
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| 906 | in_drivers int _barrier_wait(unsigned int index) |
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| 907 | { |
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| 908 | register int* pcount = (int*)&_barrier_count[index]; |
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| 909 | register int count; |
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| 910 | |
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[173] | 911 | int lock = _barrier_lock[index]; |
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[158] | 912 | |
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[173] | 913 | if ( index > 15 ) return 1; |
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| 914 | |
---|
| 915 | // parallel decrement _barrier_count[index] using atomic instructions LL/SC |
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| 916 | // input : pointer on _barrier_count[index] |
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| 917 | // output : count = _barrier_count[index] (before decrementation) |
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[158] | 918 | asm volatile ("_barrier_decrement: \n" |
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[178] | 919 | "ll %0, 0(%1) \n" |
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[158] | 920 | "addi $3, %0, -1 \n" |
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[178] | 921 | "sc $3, 0(%1) \n" |
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[158] | 922 | "beqz $3, _barrier_decrement \n" |
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[178] | 923 | :"=&r"(count) |
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| 924 | :"r"(pcount) |
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| 925 | :"$2","$3"); |
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[158] | 926 | |
---|
[173] | 927 | // the last task re-initializes the barrier_ count variable |
---|
| 928 | // and the barrier_lock variable, waking up all other waiting tasks |
---|
[158] | 929 | |
---|
| 930 | if ( count == 1 ) // last task |
---|
| 931 | { |
---|
[173] | 932 | _barrier_count[index] = _barrier_initial_value[index]; |
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| 933 | asm volatile( "sync" ); |
---|
| 934 | _barrier_lock[index] = (lock == 0) ? 1 : 0; |
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| 935 | return 0 ; |
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[158] | 936 | } |
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| 937 | else // other tasks |
---|
| 938 | { |
---|
[173] | 939 | while ( lock == _barrier_lock[index] ) { } // busy waiting |
---|
[158] | 940 | return 0 ; |
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| 941 | } |
---|
| 942 | } |
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| 943 | ////////////////////////////////////////////////////////////////////////////////////// |
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| 944 | |
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| 945 | |
---|
| 946 | // Local Variables: |
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| 947 | // tab-width: 4; |
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| 948 | // c-basic-offset: 4; |
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| 949 | // c-file-offsets:((innamespace . 0)(inline-open . 0)); |
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| 950 | // indent-tabs-mode: nil; |
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| 951 | // End: |
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| 952 | // |
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| 953 | // vim: filetype=cpp:expandtab:shiftwidth=4:tabstop=4:softtabstop=4 |
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| 954 | |
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