110 lines
5.0 KiB
Python
110 lines
5.0 KiB
Python
import os
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import io
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import wave
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import torch
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import numpy as np
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from PIL import Image
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from google import genai
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from google.genai import types
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class GeminiChatNode:
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@classmethod
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def INPUT_TYPES(cls):
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return {
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"required": {
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"api_key": ("STRING", {"default": "", "multiline": False, "tooltip": "Directly put Gemini API key or .env variable name (GEMINI_API_KEY)"}),
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"model": (["gemini-2.5-flash", "gemini-2.5-pro", "gemini-2.5-flash-lite", "gemini-3.1-pro-preview", "gemini-3.1-flash-lite-preview", "gemini-3-flash-preview", "gemini-flash-latest", "gemini-flash-lite-latest", "gemini-2.0-flash", "gemini-2.0-flash-lite"], {"default": "gemini-2.5-flash"}),
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"prompt": ("STRING", {"multiline": True}),
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"temperature": ("FLOAT", {"default": 0.2, "min": 0.0, "max": 2.0, "step": 0.1}),
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"top_p": ("FLOAT", {"default": 0.95, "min": 0.0, "max": 1.0, "step": 0.01}),
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"thinking": ("BOOLEAN", {"default": False}),
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"google_search": ("BOOLEAN", {"default": False}),
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"url_context": ("BOOLEAN", {"default": False}),
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"seed": ("INT", {"default": 69, "min": -1, "max": 2147483646, "step": 1}),
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},
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"optional": {
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"system_instruction": ("STRING", {"multiline": True, "default": ""}),
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"thinking_budget": ("INT", {"default": 0, "min": -1, "max": 24576, "step": 1, "tooltip": "-1 = auto, 0 = disabled"}),
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"image": ("IMAGE",),
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"audio": ("AUDIO",),
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}
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}
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RETURN_TYPES = ("STRING",)
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RETURN_NAMES = ("response",)
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FUNCTION = "generate"
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CATEGORY = "text/generation"
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def generate(self, prompt, model, temperature, top_p, thinking, google_search, url_context, seed, api_key,
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system_instruction=None, thinking_budget=0, image=None, audio=None):
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key = os.environ.get(api_key.strip(), api_key.strip()) or os.environ.get("GEMINI_API_KEY")
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if not key: raise ValueError("Error: No API key provided.")
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client = genai.Client(api_key=key, http_options={'api_version': 'v1beta'})
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parts = [types.Part.from_text(text=prompt)]
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if image is not None:
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for i in range(image.shape[0]):
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arr = (image[i].cpu().numpy() * 255).astype(np.uint8)
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buf = io.BytesIO()
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Image.fromarray(arr).save(buf, format="PNG")
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parts.append(types.Part.from_bytes(mime_type="image/png", data=buf.getvalue()))
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if audio is not None:
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wf = audio.get("waveform") if isinstance(audio, dict) else audio[0]
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sr = audio.get("sample_rate", 44100) if isinstance(audio, dict) else audio[1]
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wf = wf.cpu().numpy() if isinstance(wf, torch.Tensor) else wf
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if wf.ndim > 1: wf = wf.mean(axis=0) if wf.shape[0] > 1 else wf.squeeze()
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wf_int16 = (np.clip(wf, -1, 1) * 32767).astype(np.int16)
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buf = io.BytesIO()
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with wave.open(buf, 'wb') as w:
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w.setnchannels(1); w.setsampwidth(2); w.setframerate(sr)
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w.writeframes(wf_int16.tobytes())
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parts.append(types.Part.from_bytes(mime_type="audio/wav", data=buf.getvalue()))
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model_lower = model.lower()
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t_config = None
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if "gemini-2.0" in model_lower:
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print("Gemini-2.0 models do not support thinking - disabling thinking config")
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else:
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final_budget = 0
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if not thinking:
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if "gemini-2.5-pro" in model_lower or "gemini-3.1-pro-preview" in model_lower:
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print("Pro models cannot have thinking turned off - defaulting thinking budget to -1")
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final_budget = -1
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else:
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final_budget = thinking_budget
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if ("gemini-2.5-pro" in model_lower or "gemini-3.1-pro-preview" in model_lower) and final_budget == 0:
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print("Pro models cannot have thinking turned off - defaulting thinking budget to -1")
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final_budget = -1
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t_config = types.ThinkingConfig(thinking_budget=final_budget)
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tools = []
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if google_search: tools.append(types.Tool(googleSearch=types.GoogleSearch()))
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if url_context: tools.append(types.Tool(url_context=types.UrlContext()))
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config = types.GenerateContentConfig(
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temperature=temperature,
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top_p=top_p,
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seed=seed,
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system_instruction=system_instruction.strip() if system_instruction else None,
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thinking_config=t_config,
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tools=tools if tools else None
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)
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response = client.models.generate_content(
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model=model,
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contents=[types.Content(role="user", parts=parts)],
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config=config
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)
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return (response.text,)
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NODE_CLASS_MAPPINGS = {"GeminiChatNode": GeminiChatNode}
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NODE_DISPLAY_NAME_MAPPINGS = {"GeminiChatNode": "Gemini Chat"} |