Two sessions that were never separated in the working tree, so they land as one commit. check.sh ALL GREEN before and after both. SESSION 19 -- the ring rig gets a frame clock (FINDINGS 51). src/player/stream.s had no frame clock: it asked for record i the instant it finished i-1, outran any finite pipe, and never let the ring back up. The 49.1 sweep passing at 48 KB was therefore a wrap-correctness result and nothing else. PACE/PACEON ($18034/$18038) hold the decoder to 12 fps, so FR_HEAD-FR_TAIL finally means what it reads as: whole frames the decoder could still draw with delivery stopped dead. PACEON=0 free-runs and is what the wrap gate still uses, so every figure in 49 is unmoved. Paced, on the gate container: 64 KB holds 2 frames, 256 KB holds 7-8, 512 KB holds 14-15, all pixel-exact. Tolerance is ceiling-1, measured by cutting the pipe: 256 KB buys 500 ms of dead pipe, not 583. SLACK IS ACCUMULATED, NOT OWNED. It is built out of pipe-wire and a seek spends all of it. At 488 KB/s a 256 KB ring needs 4.83 s of play to reach its ceiling from empty; 512 KB needs 8.42 s to reach 14. A bigger ring raises the ceiling AND lengthens the climb, so a branch point does not ask "is the buffer big enough" but "has there been enough play since the last one" -- and Dragon's Lair's decision points are seconds apart. The rig now also says WHICH resource is binding: at 460 KB/s every ring from 192 KB to 512 KB is rate-bound at ceiling 4 and never fills, so larger rings are dead RAM in that scene. 20_seek_slack.py is the same model rewritten in Python from record sizes, sharing no code with the Lua producer: 35/35 ceilings inside its bracket. SESSION 20 -- the DMAC configuration was in the IPL ROM the whole time (FINDINGS 52). ROADMAP's "do this first" was to put the ADPCM stream on the bus. That needs a clocks-per-byte figure for the audio channel, and 11_cpu_budget.py was charging audio the DISK's rate -- 5 clk/B, its own help text calling it "single-address, bus held". Audio was being charged the favourable end of B3, a 242 KB/s open question. It never had to be a guess. The IPL ROM programs all four HD63450 channels itself and MAME boots the rig with it, so 21_iplrom_dmac.py reads the configuration out of the image and decodes the MC68450 fields. Eight (address, expected bytes, meaning) sites; a mismatch or an unknown revision exits non-zero. In check.sh, no emulator, milliseconds. ch3 DCR=$80, OCR=$32: dual address, 8-bit port, cycle steal WITHOUT hold, REQG=10 external request. The DMAC arbitrates once per byte with no burst to amortise the 5..8 + 2 over, so an audio byte is 16..19 clocks, not 5 -- the old debit was 3.2x..3.8x small. And on the bus it is still nothing: 651 B/frame is 1.25%..1.48% of a frame, about 4% of what the decoder leaves. P6's bus risk does not materialise. The unit worry was worth checking and nearly right: 15.6 kHz is 8 MHz/512 = 15,625 samples/s, two 4-bit samples to a byte = 7,812.5 B/s exactly, and AUDIO_KBPS=7.8 is that in decimal kB while the tool multiplied by 1024. THE DISK CHANNEL IS PROGRAMMED IDENTICALLY. ch1 (SASI) is DCR=$80 too, and so is ch0. That is 16..19 clocks per delivered byte, where 42.4 brackets W at 5..12 and 42.5 has W=8 already missing 47/120 frames. The only worked example of a disk DMA configuration on this machine sits above the entire bracket, and at that price nothing fits at any container size. It is not scsiexrom.bin so B3 stays open -- what changed is that a cheap configuration is now the thing that has to be SHOWN. W <= 12 is a requirement on the player's DMAC programming, not a range the hardware hands us, and it is now the largest open number in the project, ahead of the rate. An unforced cross-check fell out: 15_bus_occupancy.py's new W sweep puts W=8 at 105.7% of the frame, agreeing with 42.5's 47/120, from mode histograms and bus clocks respectively, two models sharing no code. Also: ADPCM outranks the disk at the arbiter (CPR 1 against 2), so an audio byte never waits and a video byte does -- relevant to 51's smooth-rate delivery model. README MEDIA. stream.lua gains DLX_SNAP_EVERY=1 (needs DLX_PACE, off by default, on no path check.sh takes) and tools/media/make_readme_media.py turns the PNGs into docs/img/. The stills and both clips are MAME's own screen pixels. Building it turned up something worth recording. 116 of 119 captured frames are pixel-exact against dlx.py; three are TORN -- frame n on top, frame n-1 below the tear line -- because MAME captured the screen while the block loop was partway down it. decode.s writes straight to the displayed page (one display path, 28.1), so a real player tears the same way, and this is the first time that consequence has been visible rather than argued. The script ASSERTS the tear and refuses to build otherwise, rather than trimming three frames and reporting "every frame I kept is exact". Second correction the capture forced: the snapshot fires before frame n is decoded, so the obvious reading is that it holds frame n-1 -- it does not, because MAME renders the screen at the end of the machine frame, by which time the 68000 has finished frame n. 11_cpu_budget.py's "validated to within 1 pt" line is also corrected: the model reads 2..10 pt HIGH and by more as the frame gets harder, which was already true before either session. src/player/decode.s is unchanged; decode.bin is still 1,296 B at the same MD5. Claude-Session: https://claude.ai/code/session_01194oWYW8DQXK1SZ2DnChW6
202 lines
11 KiB
Python
202 lines
11 KiB
Python
#!/usr/bin/env python3
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"""Per-frame CPU cost of the real decoder, from MEASURED per-mode block costs.
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python3 tools/analysis/11_cpu_budget.py [container.dlx]
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FINDINGS 24.5 priced the display path as "76.6% of a 12fps frame x the non-SKIP
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block fraction", i.e. every non-SKIP block costs the same. It does not: the four
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block modes were measured separately on the 68000 (synthetic single-mode frames,
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tools/bench/prep_dlx.py) and V4 costs 1.5x V1. Since V4 is roughly half of all
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non-SKIP blocks on hard content, the old model runs ~1.8x optimistic exactly
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where it matters.
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This applies the measured costs to a real container's mode histograms and
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reports what fraction of frames actually fit 833,333 cycles.
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Costs are MEASURED (tools/bench/decode.lua), cross-checked against hand-derived
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MC68000 timings in FINDINGS 28.4. They are instruction cycles against
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zero-wait-state memory, so like every figure in this project since FINDINGS 24
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they are a LOWER BOUND -- real GVRAM stalls the CPU.
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"""
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import sys, os, argparse
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sys.path.insert(0, "tools/encoder")
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import numpy as np
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from dlx import DLX
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import vq_hybrid as H
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import ratectl as RC
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sys.path.insert(0, os.path.dirname(os.path.abspath(__file__)))
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import buscost as B
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# The audio byte rate is now DERIVED, not restated: 15.6 kHz mono MSM6258V is
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# 15,625 4-bit samples/s, two to a byte. RC.AUDIO_KBPS's 7.8 is that figure in
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# DECIMAL kB, and was being multiplied by 1024 here -- a 2.4% overstatement,
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# harmless, but it hid which unit the constant was in.
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RC_AUDIO_BPS = B.ADPCM_BYTES_PER_S
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# Machine clocks, confirmed from MAME 0.277 src/mame/sharp/x68k.cpp:1133/1194/
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# 1200 -- not recalled. x68000 and x68ksupr are BOTH 40_MHz_XTAL/4 = 10 MHz;
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# only the XVI is faster, at 33.33_MHz_XTAL/2. So "has SCSI" and "has a faster
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# CPU" are different sets of machines: the Super has SCSI at 10 MHz.
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CLOCKS = {"stock": 10.0, "super": 10.0, "xvi": 33.33 / 2, "x68030": 25.0}
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FPS = 12
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# Cycles per block, measured on the emulated 68000 (synthetic single-mode
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# frames). Defined in tools/encoder/vq_hybrid.py, which is where the mode
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# decision needs them too -- one copy, not two, so a re-measurement cannot
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# leave the encoder and the scorer disagreeing.
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C_V1, C_V4, C_RAW = H.C_V1, H.C_V4, H.C_RAW
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C_SKIP_FAST, C_SKIP_MIXED = H.C_SKIP_CLUSTERED, H.C_SKIP_MIXED
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cycles = H.cycles
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ap = argparse.ArgumentParser()
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ap.add_argument("container", nargs="?",
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default="tmp/rc_fr_singe_sasi_rcprofile.dlx")
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ap.add_argument("--machine", default="stock", choices=list(CLOCKS),
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help="which X68000's clock to budget against (default stock)")
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ap.add_argument("--fps", type=float, default=FPS)
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# FINDINGS 35: the frame budget has never had the disk in it. The bitstream has
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# to be moved off SCSI into the ring buffer, and on this machine that costs CPU
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# whether it is DMA (the HD63450 cycle-steals) or PIO (the 68000 moves every
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# byte). Default ON, because scoring a decoder against a budget that assumes the
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# data arrives for free is exactly the mistake 35 was raised to stop.
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ap.add_argument("--io", default="dma", choices=["dma", "pio", "none"],
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help="how the bitstream reaches RAM (default dma)")
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ap.add_argument("--dma-clocks-per-word", type=float, default=8.0,
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help="HD63450 cycle-steal. ESTIMATE from FINDINGS 5, NEVER "
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"MEASURED, and the most load-bearing unmeasured number "
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"in the project (FINDINGS 35.3)")
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ap.add_argument("--dma-clocks-per-byte", type=float, default=5.0,
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help="what the SCSI DMA costs per DELIVERED BYTE. The MB89352 "
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"is an 8-bit port, so the DMAC pays per byte and the "
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"per-word denominator of FINDINGS 5/39.7 was half the "
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"real debit (FINDINGS 43). 5 = single-address, bus held, "
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"no drive wait; 9 = dual-address")
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ap.add_argument("--pio-clocks-per-byte", type=float, default=12.0,
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help="hand-derived floor for a 68000 register-to-RAM copy")
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# Audio is NOT the disk, and charging it the disk's rate was charging it the
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# favourable side of an open question. tools/analysis/21_iplrom_dmac.py reads
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# the IPL ROM's own HD63450 setup: channel 3 is dual address, 8-bit port, cycle
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# steal WITHOUT hold, external request -- one full arbitration per byte, no
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# burst to amortise it over. 16 is the datasheet best case, 19 the worst.
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ap.add_argument("--adpcm-clocks-per-byte", type=float,
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default=B.ADPCM_CLK_BYTE_BEST,
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help="what an ADPCM byte costs. READ OUT OF THE IPL ROM's DMAC "
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"configuration (21_iplrom_dmac.py), not assumed: dual "
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"address + per-byte arbitration = 16 best, 19 worst. The "
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"audio stream always DMAs, whatever --io says about the "
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"disk")
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a = ap.parse_args()
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CPUHZ = CLOCKS[a.machine] * 1e6
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FPS = a.fps
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FRAME = CPUHZ / FPS
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if not os.path.exists(a.container):
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sys.exit(f"missing {a.container}")
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d = DLX(a.container)
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# --- what the transfer costs, from the container's own byte rate
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vid_bps = sum(n + 4 for (_, n) in d.frames) / d.nframes * d.fps
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io_bps = vid_bps + RC_AUDIO_BPS
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aud_cycles_per_s = RC_AUDIO_BPS * a.adpcm_clocks_per_byte
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if a.io == "dma":
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io_cycles_per_s = vid_bps * a.dma_clocks_per_byte + aud_cycles_per_s
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elif a.io == "pio":
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io_cycles_per_s = vid_bps * a.pio_clocks_per_byte + aud_cycles_per_s
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else:
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io_cycles_per_s = 0.0
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io_pct = 100 * io_cycles_per_s / CPUHZ
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aud_pct = 100 * aud_cycles_per_s / CPUHZ
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FRAME_NET = FRAME * (1 - io_pct / 100)
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modes = [d.modes(f) for f in range(d.nframes)]
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cyc = np.array([cycles(m) for m in modes])
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pct = 100 * cyc / FRAME_NET
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ns = np.array([100 * (m != 0).mean() for m in modes])
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print(f"{a.container}: {d.nframes} frames, {d.nb} blocks/frame")
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print(f"budget: {a.machine} @ {CLOCKS[a.machine]:.2f} MHz, {FPS:g} fps "
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f"-> {FRAME:,.0f} cycles/frame")
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print(f" I/O ({a.io}): {io_bps/1024:.1f} KB/s costs {io_pct:.1f}% of the CPU "
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f"-> {FRAME_NET:,.0f} cycles/frame left for decoding")
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if a.io != "none":
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print(f" video {vid_bps/1024:6.1f} KB/s x "
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f"{(a.dma_clocks_per_byte if a.io=='dma' else a.pio_clocks_per_byte):g}"
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f" clk/B = {io_pct-aud_pct:5.2f}% "
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f"(W: still open, ROADMAP B3 / FINDINGS 42.4)\n"
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f" audio {RC_AUDIO_BPS/1024:6.2f} KB/s x {a.adpcm_clocks_per_byte:g}"
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f" clk/B = {aud_pct:5.2f}% "
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f"(SETTLED: read out of the IPL ROM, FINDINGS 52)")
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if a.io == "dma":
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print(f" {a.dma_clocks_per_byte:g} clocks/BYTE, the MC68450 datasheet "
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f"floor for an 8-bit port (FINDINGS 43).\n It is not measured on "
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f"hardware; what IS settled is that the per-word denominator this\n"
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f" used before session 14 was physically impossible -- 2.5 "
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f"clocks/byte is below\n the 68000's 4-clock minimum bus cycle.")
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elif a.io == "none":
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print(" WARNING: --io none scores the decoder as if the disk were free. "
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"That is the\n premise FINDINGS 35 overturned; every 'N frames miss' "
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"figure before session 9\n was computed this way.")
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if a.machine != "stock":
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print(" (derived: scaled by clock from cycles measured on the 10 MHz core.\n"
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" MAME 0.277 marks x68ksupr/x68kxvi/x68030 MACHINE_NOT_WORKING, so\n"
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" this is not measured on those machines and ignores any difference\n"
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" in memory timing.)")
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print(f"measured block costs: SKIP {C_SKIP_FAST*4:.0f}/4 (clustered) "
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f"{C_SKIP_MIXED:.0f} (mixed) V1 {C_V1:.0f} V4 {C_V4:.0f} RAW {C_RAW:.0f} cycles\n")
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# --- validation against the four real frames timed on the 68000. These
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# timings belong to ONE container; quoting them against any other would be
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# comparing a model of this stream to a measurement of a different one.
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TIMED = "tmp/rc_fr_singe_sasi_rcprofile.dlx"
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TIMED_FRAMES = (("min non-SKIP", 15.4, 31.5), ("median", 48.1, 73.8),
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("p90", 82.5, 116.4), ("max non-SKIP", 100.0, 135.8))
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if (os.path.abspath(a.container) == os.path.abspath(TIMED)
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and a.machine == "stock" and a.fps == 12):
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print("model vs the frames actually timed on the 68000 "
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"(the model reads HIGH, and by more\n as the frame gets harder -- "
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"so a 'does not fit' from it is the safe direction):")
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for label, frac, meas in TIMED_FRAMES:
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i = int(np.argmin(abs(ns - frac)))
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print(f" {label:<14} non-SKIP {ns[i]:5.1f}% model {pct[i]:6.1f}% "
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f"measured {meas:5.1f}% error {pct[i]-meas:+.1f} pt")
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else:
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print(f"(no 68000 timings for this container/machine. The model is "
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f"validated against four\n frames timed on the 68000, and only on "
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f"{TIMED}\n at stock/12fps -- run it on that container to see the "
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f"errors, which are a few points\n CONSERVATIVE and grow with the "
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f"non-SKIP fraction. Run tools/bench/decode.lua to\n time another "
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f"container.)")
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print(f"\nper-frame cost, % of a {FPS:g}fps frame budget:")
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print(f" measured-cost model: median {np.median(pct):5.1f} "
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f"p90 {np.percentile(pct,90):5.1f} max {pct.max():5.1f}")
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if a.machine == "stock" and a.fps == 12:
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# 24.5's 76.6% is a 10 MHz / 12 fps figure; quoting it at another clock or
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# framerate would be comparing against a model that was never stated there.
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old = 76.6 * ns / 100
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print(f" FINDINGS 24.5 model: median {np.median(old):5.1f} "
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f"p90 {np.percentile(old,90):5.1f} max {old.max():5.1f} "
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f"(optimistic by {np.median(pct)/np.median(old):.2f}x at the median)")
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miss = pct > 100
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print(f"\nframes that do NOT fit {FRAME_NET:,.0f} cycles: {miss.sum()}/{d.nframes} "
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f"({100*miss.mean():.0f}%)")
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print(f" sustainable framerate if EVERY frame must fit: "
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f"{CPUHZ*(1-io_pct/100)/cyc.max():.1f} fps; at the mean frame "
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f"{CPUHZ*(1-io_pct/100)/cyc.mean():.1f} fps")
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if miss.any():
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print(f" worst {pct.max():.1f}% -- {(pct.max()-100)/100*1000/FPS:.0f} ms late "
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f"on an {1000/FPS:.0f} ms frame")
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print(f" the budget is first missed at {ns[miss].min():.1f}% non-SKIP blocks")
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# Where do the cycles go? This is what a cost-aware mode decision would act on.
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tot = np.array([[(m == k).sum() for k in range(4)] for m in modes]).sum(0)
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spend = tot * np.array([C_SKIP_MIXED, C_V1, C_V4, C_RAW])
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print(f"\nwhere the cycles go, over the whole window:")
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for k, n in enumerate(("SKIP", "V1", "V4", "RAW")):
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print(f" {n:<5} {100*tot[k]/tot.sum():5.1f}% of blocks "
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f"{100*spend[k]/spend.sum():5.1f}% of the cycles")
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print(f"\nV4 is {C_V4/C_V1:.2f}x a V1 block for {4}x the payload bytes. Since "
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f"session 8 the mode\ndecision charges it BOTH (decide(ctx, lam, mu), "
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f"FINDINGS 31), which is why V4 is now\nthe rarest non-SKIP mode here -- "
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f"a byte-rich profile buys its way out to RAW instead.")
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