Speed bot refinements, MLX standardization
This commit is contained in:
1
bot.log
1
bot.log
@@ -23987,3 +23987,4 @@ sqlite3.OperationalError: no such column: id
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2026-08-04 00:08:23,619 skip KXBNB15M-26AUG040315-15: BTC +1.6% 24h — no counter-trend shorts (conf 0.65<0.78)
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2026-08-04 00:08:23,619 skip KXBNB15M-26AUG040315-15: BTC +1.6% 24h — no counter-trend shorts (conf 0.65<0.78)
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2026-08-04 00:08:33,518 skip KXBTC15M-26AUG040315-15: BTC +1.6% 24h — no counter-trend shorts (conf 0.65<0.78)
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2026-08-04 00:08:33,518 skip KXBTC15M-26AUG040315-15: BTC +1.6% 24h — no counter-trend shorts (conf 0.65<0.78)
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2026-08-04 00:08:42,688 skip KXZEC15M-26AUG040315-15: passes: [split qwen=SKIP(0.50) ornith=SKIP(0.50)] Extreme fear + choppy regime, no clear edge
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2026-08-04 00:08:42,688 skip KXZEC15M-26AUG040315-15: passes: [split qwen=SKIP(0.50) ornith=SKIP(0.50)] Extreme fear + choppy regime, no clear edge
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2026-08-04 00:48:16,761 127.0.0.1 - - [04/Aug/2026 00:48:16] "[33mGET /health HTTP/1.1[0m" 404 -
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8
bot.py
8
bot.py
@@ -36,7 +36,7 @@ DEFAULT_CFG = {
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"swing_threshold_pct": 0.12, # fade triggers when |weighted 15m move| >= this
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"swing_threshold_pct": 0.12, # fade triggers when |weighted 15m move| >= this
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"learning": True,
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"learning": True,
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"ollama_url": "http://localhost:11434",
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"ollama_url": "http://localhost:11434",
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"ollama_model": "qwen3.5:4b",
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"ollama_model": "qwen3.5:4b-mlx",
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"series": "KXBTC15M",
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"series": "KXBTC15M",
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"kill": False,
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"kill": False,
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}
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}
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@@ -330,7 +330,7 @@ def llm_vote(cfg, price, mom, mom_score, conn):
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prompt = enriched_context(cfg, price, mom, mom_score, conn)
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prompt = enriched_context(cfg, price, mom, mom_score, conn)
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try:
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try:
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fast_url = cfg.get("fast_llm_url", cfg.get("ollama_url","http://localhost:11434"))
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fast_url = cfg.get("fast_llm_url", cfg.get("ollama_url","http://localhost:11434"))
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fast_model = cfg.get("fast_llm_model", "qwen3.5:4b")
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fast_model = cfg.get("fast_llm_model", "qwen3.5:4b-mlx")
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r1 = requests.post(fast_url+"/api/generate",
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r1 = requests.post(fast_url+"/api/generate",
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json={"model": fast_model, "prompt": prompt, "stream": False, "think": False, "keep_alive": "10m",
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json={"model": fast_model, "prompt": prompt, "stream": False, "think": False, "keep_alive": "10m",
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"options": {"temperature": 0.3, "num_predict": 60}}, timeout=8,
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"options": {"temperature": 0.3, "num_predict": 60}}, timeout=8,
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@@ -608,7 +608,7 @@ def adapt_controls(conn, cfg):
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try:
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try:
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fast_url = cfg.get("fast_llm_url", "http://localhost:11434")
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fast_url = cfg.get("fast_llm_url", "http://localhost:11434")
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r = requests.post(fast_url+"/api/generate",
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r = requests.post(fast_url+"/api/generate",
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json={"model": cfg.get("fast_llm_model","qwen3.5:4b"), "prompt": prompt,
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json={"model": cfg.get("fast_llm_model","qwen3.5:4b-mlx"), "prompt": prompt,
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"stream": False, "think": False, "options": {"temperature": 0.1, "num_predict": 80}},
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"stream": False, "think": False, "options": {"temperature": 0.1, "num_predict": 80}},
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timeout=10)
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timeout=10)
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txt = r.json().get("response","")
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txt = r.json().get("response","")
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@@ -628,7 +628,7 @@ def adapt_controls(conn, cfg):
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)
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)
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try:
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try:
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r3 = requests.post(fast_url+"/api/generate",
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r3 = requests.post(fast_url+"/api/generate",
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json={"model": cfg.get("fast_llm_model","qwen3.5:4b"), "prompt": lp,
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json={"model": cfg.get("fast_llm_model","qwen3.5:4b-mlx"), "prompt": lp,
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"stream": False, "think": False, "options": {"temperature": 0.1, "num_predict": 60}},
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"stream": False, "think": False, "options": {"temperature": 0.1, "num_predict": 60}},
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timeout=10)
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timeout=10)
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txt3 = r3.json().get("response","")
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txt3 = r3.json().get("response","")
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