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Duplicate from sweepai/sweep-next-edit-v2-7B

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Co-authored-by: Kevin Lu <kevinlu1248@users.noreply.huggingface.co>

.gitattributes ADDED
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+ tokenizer.json filter=lfs diff=lfs merge=lfs -text
README.md ADDED
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1
+ ---
2
+ license: apache-2.0
3
+ base_model: Qwen/Qwen2.5-Coder-7B
4
+ tags:
5
+ - code
6
+ - autocomplete
7
+ - next-edit-prediction
8
+ - dpo
9
+ language:
10
+ - en
11
+ pipeline_tag: text-generation
12
+ ---
13
+
14
+ # sweep-next-edit-v2-7B
15
+
16
+ A 7B parameter model that predicts the next edit a developer will make. Given the current file, recent diffs, and cursor position, the model predicts what code block the developer will change next and how.
17
+
18
+ ## Usage
19
+
20
+ ```bash
21
+ pip install transformers torch accelerate
22
+ python inference.py
23
+ ```
24
+
25
+ See [`inference.py`](inference.py) for a complete working example.
26
+
27
+ ```python
28
+ from inference import build_prompt, generate, FileChunk, DIFF_FORMAT
29
+
30
+ prompt, code_block, block_start, relative_cursor = build_prompt(
31
+ file_path="example.py",
32
+ file_contents=edited_contents,
33
+ cursor_position=cursor_position,
34
+ recent_changes=recent_changes,
35
+ retrieval_chunks=[FileChunk("utils.py", "def helper(): ...")],
36
+ changes_above_cursor=False,
37
+ )
38
+
39
+ completion = generate(model, tokenizer, prompt, device="cuda")
40
+ ```
41
+
42
+ ### Prompt format
43
+
44
+ The model uses `<|file_sep|>` delimiters and a `<|cursor|>` marker:
45
+
46
+ ```
47
+ <|file_sep|>{file_path}
48
+ {file_contents}
49
+ {retrieval_chunks}
50
+ {recent_changes_as_diffs}
51
+ <|file_sep|>original/{file_path}:{start}:{end}
52
+ {code_block_before_last_edit}
53
+ <|file_sep|>current/{file_path}:{start}:{end}
54
+ {code_block_with_cursor_marker}
55
+ <|file_sep|>updated/{file_path}:{start}:{end}
56
+ {prefill}
57
+ ```
58
+
59
+ The model completes the `updated/` section with the predicted new code block.
60
+
61
+ - **file_path section**: ~300 lines of file context around the cursor
62
+ - **retrieval chunks**: Cross-file context from related files
63
+ - **recent changes**: Diffs of recent edits in `original:/updated:` format
64
+ - **original/**: Code block around cursor before the last edit
65
+ - **current/**: Same block with `<|cursor|>` inserted at cursor position
66
+ - **updated/**: Model output — the predicted edited code block
67
+
68
+ ### Prefill strategy
69
+
70
+ The `updated/` section is seeded with a prefill to constrain generation:
71
+
72
+ - **Default** (`changes_above_cursor=False`): Prefill everything up to the cursor line. The model only generates from the cursor line onward.
73
+ - **After insertion** (`changes_above_cursor=True`): Prefill only the first line + trailing blank lines. Gives the model freedom to rewrite lines between the insertion point and cursor.
74
+
75
+ ### Recent changes format
76
+
77
+ ```
78
+ <|file_sep|>{file_path}:{start_line}:{end_line}
79
+ original:
80
+ {old_code}
81
+ updated:
82
+ {new_code}
83
+ ```
84
+
85
+ ## Details
86
+
87
+ Fine-tuned from [Qwen2.5-Coder-7B](https://huggingface.co/Qwen/Qwen2.5-Coder-7B) on developer editing traces using SFT, then GRPO, then DPO.
88
+
89
+ <table>
90
+ <tr><td>Base model</td><td>Qwen2.5-Coder-7B</td></tr>
91
+ <tr><td>Fine-tuning</td><td>SFT → GRPO → DPO</td></tr>
92
+ <tr><td>Parameters</td><td>7B</td></tr>
93
+ <tr><td>Precision</td><td>bfloat16</td></tr>
94
+ <tr><td>Context length</td><td>32,768 tokens</td></tr>
95
+ <tr><td>Architecture</td><td>Qwen2 (28 layers, hidden dim 3584)</td></tr>
96
+ <tr><td>Stop tokens</td><td><code>&lt;|endoftext|&gt;</code>, <code>&lt;|file_sep|&gt;</code></td></tr>
97
+ <tr><td>Max output tokens</td><td>1024</td></tr>
98
+ <tr><td>Decoding</td><td>Greedy (temperature=0)</td></tr>
99
+ </table>
added_tokens.json ADDED
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+ {
2
+ "</tool_call>": 151658,
3
+ "<tool_call>": 151657,
4
+ "<|PAD_TOKEN|>": 151665,
5
+ "<|box_end|>": 151649,
6
+ "<|box_start|>": 151648,
7
+ "<|endoftext|>": 151643,
8
+ "<|file_sep|>": 151664,
9
+ "<|fim_middle|>": 151660,
10
+ "<|fim_pad|>": 151662,
11
+ "<|fim_prefix|>": 151659,
12
+ "<|fim_suffix|>": 151661,
13
+ "<|im_end|>": 151645,
14
+ "<|im_start|>": 151644,
15
+ "<|image_pad|>": 151655,
16
+ "<|object_ref_end|>": 151647,
17
+ "<|object_ref_start|>": 151646,
18
+ "<|quad_end|>": 151651,
19
+ "<|quad_start|>": 151650,
20
+ "<|repo_name|>": 151663,
21
+ "<|video_pad|>": 151656,
22
+ "<|vision_end|>": 151653,
23
+ "<|vision_pad|>": 151654,
24
+ "<|vision_start|>": 151652
25
+ }
config.json ADDED
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1
+ {
2
+ "architectures": [
3
+ "Qwen2ForCausalLM"
4
+ ],
5
+ "attention_dropout": 0.0,
6
+ "bos_token_id": 151643,
7
+ "eos_token_id": 151643,
8
+ "hidden_act": "silu",
9
+ "hidden_size": 3584,
10
+ "initializer_range": 0.02,
11
+ "intermediate_size": 18944,
12
+ "layer_types": [
13
+ "full_attention",
14
+ "full_attention",
15
+ "full_attention",
16
+ "full_attention",
17
+ "full_attention",
18
+ "full_attention",
19
+ "full_attention",
20
+ "full_attention",
21
+ "full_attention",
22
+ "full_attention",
23
+ "full_attention",
24
+ "full_attention",
25
+ "full_attention",
26
+ "full_attention",
27
+ "full_attention",
28
+ "full_attention",
29
+ "full_attention",
30
+ "full_attention",
31
+ "full_attention",
32
+ "full_attention",
33
+ "full_attention",
34
+ "full_attention",
35
+ "full_attention",
36
+ "full_attention",
37
+ "full_attention",
38
+ "full_attention",
39
+ "full_attention",
40
+ "full_attention"
41
+ ],
42
+ "max_position_embeddings": 32768,
43
+ "max_window_layers": 28,
44
+ "model_type": "qwen2",
45
+ "num_attention_heads": 28,
46
+ "num_hidden_layers": 28,
47
+ "num_key_value_heads": 4,
48
+ "pad_token_id": 151665,
49
+ "rms_norm_eps": 1e-06,
50
+ "rope_scaling": null,
51
+ "rope_theta": 1000000.0,
52
+ "sliding_window": null,
53
+ "tie_word_embeddings": false,
54
+ "torch_dtype": "bfloat16",
55
+ "transformers_version": "4.51.3",
56
+ "unsloth_fixed": true,
57
+ "use_cache": false,
58
+ "use_sliding_window": false,
59
+ "vocab_size": 152064
60
+ }
generation_config.json ADDED
@@ -0,0 +1,8 @@
 
 
 
 
 
 
 
 
 
1
+ {
2
+ "bos_token_id": 151643,
3
+ "eos_token_id": 151643,
4
+ "max_length": 32768,
5
+ "max_new_tokens": 2048,
6
+ "pad_token_id": 151665,
7
+ "transformers_version": "4.51.3"
8
+ }
inference.py ADDED
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1
+ """
2
+ Minimal reproducible inference script for sweep-next-edit-v2-7B.
3
+
4
+ This model predicts the next edit a developer will make given:
5
+ - the current file contents
6
+ - recent changes (diffs)
7
+ - the cursor position
8
+ - (optional) retrieval chunks from other files
9
+
10
+ Usage:
11
+ python inference.py
12
+
13
+ Requires: transformers, torch, accelerate
14
+ pip install transformers torch accelerate
15
+ """
16
+
17
+ import torch
18
+ from dataclasses import dataclass
19
+ from transformers import AutoModelForCausalLM, AutoTokenizer
20
+
21
+ MODEL_ID = "sweepai/sweep-next-edit-v2-7B"
22
+
23
+ # --- Prompt template (from sweepai/autocomplete/next_edit_autocomplete.py) ---
24
+ PROMPT_TEMPLATE = """<|file_sep|>{file_path}
25
+ {initial_file}{retrieval_results}
26
+ {recent_changes}
27
+ <|file_sep|>original/{file_path}:{start_line}:{end_line}
28
+ {prev_section}
29
+ <|file_sep|>current/{file_path}:{start_line}:{end_line}
30
+ {code_block}
31
+ <|file_sep|>updated/{file_path}:{start_line}:{end_line}
32
+ {prefill}"""
33
+
34
+ DIFF_FORMAT = """<|file_sep|>{file_path}:{start_line}:{end_line}
35
+ original:
36
+ {old_code}
37
+ updated:
38
+ {new_code}"""
39
+
40
+ STOP_TOKENS = ["<|endoftext|>", "<|file_sep|>"]
41
+ MAX_NEW_TOKENS = 1024
42
+
43
+
44
+ @dataclass
45
+ class FileChunk:
46
+ """A chunk of code from another file, used for cross-file context (retrieval)."""
47
+ file_path: str
48
+ content: str
49
+
50
+ def to_string(self) -> str:
51
+ return f"<|file_sep|>{self.file_path}\n{self.content}\n"
52
+
53
+
54
+ def compute_prefill(
55
+ code_block: str,
56
+ relative_cursor: int,
57
+ changes_above_cursor: bool = False,
58
+ ) -> str:
59
+ """
60
+ Compute the prefill string — the portion of the updated code block that we
61
+ feed to the model so it only has to generate starting from the edit point.
62
+
63
+ The model's job is to produce the full "updated" code block. But most of it
64
+ is unchanged — only a small region near the cursor is different. So we
65
+ "prefill" the output with the unchanged prefix, and the model just continues
66
+ from there.
67
+
68
+ Two strategies depending on what the user just did:
69
+
70
+ changes_above_cursor=True (last action was an insertion):
71
+ The user just inserted text above the cursor. The lines above the cursor
72
+ may have shifted, so we can't trust them as a prefill — the model might
73
+ need to edit them. We only prefill the very first line of the code block
74
+ (plus any blank lines after it), giving the model freedom to rewrite
75
+ everything from line 2 onward.
76
+
77
+ Example: code_block is 11 lines, cursor on line 10.
78
+ Prefill = line 1 + any trailing blank lines = " if n <= 0:\n"
79
+ Model generates lines 2-11.
80
+
81
+ changes_above_cursor=False (last action was NOT an insertion):
82
+ The user did something else (navigation, deletion, etc). The lines above
83
+ the cursor are likely stable, so we prefill up to the cursor line. This
84
+ constrains the model to only edit at/below the cursor.
85
+
86
+ We prefill everything before the cursor's line (up to the last newline
87
+ before cursor position), so the model starts generating from the cursor
88
+ line itself.
89
+
90
+ Example: code_block is 11 lines, cursor on line 10 col 0.
91
+ Prefill = lines 1-9 (everything up to the last \\n before cursor).
92
+ Model generates lines 10-11.
93
+ """
94
+ if changes_above_cursor:
95
+ # --- Insertion mode: only prefill first line + trailing newlines ---
96
+ prefill = code_block[:relative_cursor]
97
+ prefilled_lines = prefill.splitlines(True)
98
+
99
+ NUM_LINES_ABOVE = 1
100
+ before_split = "".join(prefilled_lines[:NUM_LINES_ABOVE])
101
+ after_split = "".join(prefilled_lines[NUM_LINES_ABOVE:])
102
+
103
+ # Append consecutive newlines (blank lines) but stop at first real char.
104
+ # This preserves blank-line structure without constraining the model
105
+ # to keep the original code on those lines.
106
+ for char in after_split:
107
+ if char == "\n":
108
+ before_split += "\n"
109
+ else:
110
+ break
111
+
112
+ return before_split
113
+ else:
114
+ # --- Default mode: prefill up to the cursor line ---
115
+ prefix_before_cursor = code_block[:relative_cursor]
116
+ if "\n" not in prefix_before_cursor:
117
+ # Cursor is on the first line — no prefill possible
118
+ return ""
119
+ prefill_end = prefix_before_cursor.rfind("\n") + 1
120
+ return code_block[:prefill_end]
121
+
122
+
123
+ def is_pure_insertion_above_cursor(
124
+ code_block: str, completion: str, relative_cursor: int
125
+ ) -> bool:
126
+ """
127
+ Reject completions that only insert new lines above the cursor without
128
+ actually editing the cursor line. These are low-value predictions —
129
+ the model is just guessing what new code to add rather than fixing
130
+ an existing reference.
131
+ """
132
+ current_line_index = len(code_block[:relative_cursor].splitlines(True))
133
+ code_block_lines = code_block.splitlines(True)
134
+ cursor_line = code_block_lines[current_line_index - 1]
135
+
136
+ if code_block.strip() == completion.strip():
137
+ return False
138
+ if not cursor_line.strip():
139
+ return False
140
+
141
+ prefix_lines = code_block_lines[:current_line_index - 1]
142
+ prefix = "".join(prefix_lines)
143
+ suffix_lines = code_block_lines[current_line_index:]
144
+ suffix = "".join(suffix_lines)
145
+
146
+ # If completion = prefix + NEW STUFF + cursor_line + suffix, it's a pure
147
+ # insertion above cursor (nothing at/below cursor changed).
148
+ if completion.startswith(prefix) and completion.endswith(cursor_line + suffix):
149
+ return True
150
+
151
+ return False
152
+
153
+
154
+ def build_prompt(
155
+ file_path: str,
156
+ file_contents: str,
157
+ cursor_position: int,
158
+ recent_changes: str = "",
159
+ retrieval_chunks: list[FileChunk] | None = None,
160
+ file_chunks: list[FileChunk] | None = None,
161
+ changes_above_cursor: bool = False,
162
+ num_lines_before: int = 10,
163
+ num_lines_after: int = 10,
164
+ ) -> tuple[str, str, int, int]:
165
+ """
166
+ Build the model prompt from file contents and cursor position.
167
+
168
+ Args:
169
+ file_path: Path of the file being edited.
170
+ file_contents: Full contents of the file after the user's latest edit.
171
+ cursor_position: Character offset of the cursor in file_contents.
172
+ recent_changes: Formatted diff string of recent changes (use DIFF_FORMAT).
173
+ retrieval_chunks: Cross-file context chunks (e.g. related functions from
174
+ other files). Placed AFTER recent_changes in the prompt for optimal
175
+ KV cache reuse.
176
+ file_chunks: Additional file context chunks. Prepended to the prompt.
177
+ changes_above_cursor: Whether the user's last action was an insertion.
178
+ Controls the prefill strategy (see compute_prefill).
179
+ num_lines_before: Lines of code to include before cursor in the block.
180
+ num_lines_after: Lines of code to include after cursor in the block.
181
+
182
+ Returns:
183
+ (formatted_prompt, code_block, block_start_index, relative_cursor)
184
+ """
185
+ lines = file_contents.splitlines(True)
186
+
187
+ # Find cursor line
188
+ pos = 0
189
+ cursor_line = 0
190
+ for i, line in enumerate(lines):
191
+ if pos + len(line) > cursor_position:
192
+ cursor_line = i
193
+ break
194
+ pos += len(line)
195
+ else:
196
+ cursor_line = len(lines) - 1
197
+
198
+ # Extract code block around cursor
199
+ block_start = max(0, cursor_line - num_lines_before)
200
+ block_end = min(len(lines), cursor_line + num_lines_after + 1)
201
+ code_block = "".join(lines[block_start:block_end])
202
+ block_start_index = sum(len(l) for l in lines[:block_start])
203
+
204
+ # Relative cursor position within code block
205
+ relative_cursor = cursor_position - block_start_index
206
+
207
+ # Insert <|cursor|> marker into the "current" version
208
+ code_block_with_cursor = (
209
+ code_block[:relative_cursor]
210
+ + "<|cursor|>"
211
+ + code_block[relative_cursor:]
212
+ )
213
+
214
+ # prev_section = code_block without cursor (the "original" version)
215
+ prev_section = code_block
216
+
217
+ # Compute prefill based on whether last action was an insertion
218
+ prefill = compute_prefill(code_block, relative_cursor, changes_above_cursor)
219
+
220
+ # initial_file: broad context around cursor from the file (up to ~300 lines)
221
+ context_start = max(0, cursor_line - 150)
222
+ context_end = min(len(lines), cursor_line + 150)
223
+ initial_file = "".join(lines[context_start:context_end])
224
+
225
+ # Format retrieval results (cross-file context)
226
+ retrieval_results = ""
227
+ if retrieval_chunks:
228
+ retrieval_results = "".join(
229
+ f"\n{chunk.to_string()}" for chunk in retrieval_chunks
230
+ )
231
+
232
+ start_line = block_start + 1
233
+ end_line = block_end
234
+
235
+ formatted = PROMPT_TEMPLATE.format(
236
+ file_path=file_path,
237
+ initial_file=initial_file,
238
+ retrieval_results=retrieval_results,
239
+ recent_changes=recent_changes,
240
+ prev_section=prev_section,
241
+ code_block=code_block_with_cursor,
242
+ start_line=start_line,
243
+ end_line=end_line,
244
+ prefill=prefill,
245
+ )
246
+
247
+ # Prepend file chunks (other open files for context)
248
+ if file_chunks:
249
+ formatted = "".join(c.to_string() for c in file_chunks) + formatted
250
+
251
+ return formatted, code_block, block_start_index, relative_cursor
252
+
253
+
254
+ def generate(model, tokenizer, prompt: str, device: str = "cuda") -> str:
255
+ """Run inference and return the completion (the predicted updated code block)."""
256
+ inputs = tokenizer(prompt, return_tensors="pt").to(device)
257
+
258
+ stop_token_ids = [
259
+ tokenizer.convert_tokens_to_ids(t)
260
+ for t in STOP_TOKENS
261
+ if t in tokenizer.get_vocab()
262
+ ]
263
+ eos_ids = list(set(stop_token_ids + [tokenizer.eos_token_id]))
264
+
265
+ with torch.no_grad():
266
+ outputs = model.generate(
267
+ **inputs,
268
+ max_new_tokens=MAX_NEW_TOKENS,
269
+ do_sample=False, # greedy (temperature=0)
270
+ eos_token_id=eos_ids,
271
+ pad_token_id=tokenizer.eos_token_id,
272
+ )
273
+
274
+ new_tokens = outputs[0][inputs["input_ids"].shape[1]:]
275
+ completion = tokenizer.decode(new_tokens, skip_special_tokens=False)
276
+
277
+ # Strip stop tokens from output
278
+ for stop in STOP_TOKENS:
279
+ if stop in completion:
280
+ completion = completion[: completion.index(stop)]
281
+
282
+ return completion
283
+
284
+
285
+ def main():
286
+ # --- Example: predict the next edit ---
287
+ file_path = "example.py"
288
+ file_contents = """\
289
+ def fibonacci(n):
290
+ if n <= 0:
291
+ return 0
292
+ elif n == 1:
293
+ return 1
294
+ else:
295
+ return fibonacci(n - 1) + fibonacci(n - 2)
296
+
297
+
298
+ def main():
299
+ for i in range(10):
300
+ print(fibonacci(i))
301
+ """
302
+
303
+ # Simulate: user just renamed fibonacci -> fib on line 7,
304
+ # cursor is now on line 12 (the call site that still says fibonacci).
305
+ edited_contents = file_contents.replace(
306
+ "return fibonacci(n - 1) + fibonacci(n - 2)",
307
+ "return fib(n - 1) + fib(n - 2)",
308
+ ).replace(
309
+ "def fibonacci(n):",
310
+ "def fib(n):",
311
+ )
312
+
313
+ # Cursor is on the print line that still references "fibonacci"
314
+ cursor_line_text = " print(fibonacci(i))"
315
+ cursor_position = edited_contents.index(cursor_line_text)
316
+
317
+ # Recent change as a diff
318
+ recent_changes = DIFF_FORMAT.format(
319
+ file_path=file_path,
320
+ start_line=1,
321
+ end_line=7,
322
+ old_code="def fibonacci(n):\n return fibonacci(n - 1) + fibonacci(n - 2)",
323
+ new_code="def fib(n):\n return fib(n - 1) + fib(n - 2)",
324
+ )
325
+
326
+ # Example retrieval chunk: a related function from another file
327
+ retrieval_chunks = [
328
+ FileChunk(
329
+ file_path="utils.py",
330
+ content="def fib_memo(n, memo={}):\n if n in memo:\n return memo[n]\n memo[n] = fib_memo(n-1) + fib_memo(n-2)\n return memo[n]",
331
+ )
332
+ ]
333
+
334
+ # The rename was NOT an insertion, so changes_above_cursor=False.
335
+ # This means the prefill will include everything up to the cursor line,
336
+ # constraining the model to only edit at/below the cursor.
337
+ prompt, code_block, block_start, relative_cursor = build_prompt(
338
+ file_path=file_path,
339
+ file_contents=edited_contents,
340
+ cursor_position=cursor_position,
341
+ recent_changes=recent_changes,
342
+ retrieval_chunks=retrieval_chunks,
343
+ changes_above_cursor=False,
344
+ )
345
+
346
+ print("=" * 60)
347
+ print("PROMPT")
348
+ print("=" * 60)
349
+ print(prompt)
350
+ print()
351
+
352
+ # --- Load model and run inference ---
353
+ device = "mps" if torch.backends.mps.is_available() else "cpu"
354
+ print(f"Loading model {MODEL_ID} on {device}...")
355
+ tokenizer = AutoTokenizer.from_pretrained(MODEL_ID, trust_remote_code=True)
356
+ model = AutoModelForCausalLM.from_pretrained(
357
+ MODEL_ID,
358
+ dtype=torch.bfloat16,
359
+ device_map=device,
360
+ trust_remote_code=True,
361
+ )
362
+
363
+ print("Running inference...")
364
+ completion = generate(model, tokenizer, prompt, device=device)
365
+
366
+ # Check for pure insertion above cursor (low-value prediction)
367
+ if is_pure_insertion_above_cursor(code_block, completion, relative_cursor):
368
+ print("Rejected: model only inserted above cursor without editing cursor line.")
369
+ return
370
+
371
+ print("=" * 60)
372
+ print("MODEL OUTPUT (predicted updated code block)")
373
+ print("=" * 60)
374
+ print(completion)
375
+ print()
376
+
377
+ # Show the diff
378
+ print("=" * 60)
379
+ print("DIFF")
380
+ print("=" * 60)
381
+ print(f"Original code block:\n{code_block}")
382
+ print(f"Updated code block:\n{completion}")
383
+
384
+
385
+ if __name__ == "__main__":
386
+ main()
merges.txt ADDED
The diff for this file is too large to render. See raw diff
 
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