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- RoMistral-7b-Instruct-2024-05-17-Q2_K.gguf +3 -0
- RoMistral-7b-Instruct-2024-05-17-Q3_K_L.gguf +3 -0
- RoMistral-7b-Instruct-2024-05-17-Q3_K_M.gguf +3 -0
- RoMistral-7b-Instruct-2024-05-17-Q3_K_S.gguf +3 -0
- RoMistral-7b-Instruct-2024-05-17-Q4_0.gguf +3 -0
- RoMistral-7b-Instruct-2024-05-17-Q4_K_M.gguf +3 -0
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- RoMistral-7b-Instruct-2024-05-17-Q5_K_S.gguf +3 -0
- RoMistral-7b-Instruct-2024-05-17-Q6_K.gguf +3 -0
- RoMistral-7b-Instruct-2024-05-17-Q8_0.gguf +3 -0
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1 |
+
---
|
2 |
+
license: cc-by-nc-4.0
|
3 |
+
language:
|
4 |
+
- ro
|
5 |
+
base_model: OpenLLM-Ro/RoMistral-7b-Instruct-2024-05-17
|
6 |
+
datasets:
|
7 |
+
- OpenLLM-Ro/ro_sft_alpaca
|
8 |
+
- OpenLLM-Ro/ro_sft_alpaca_gpt4
|
9 |
+
- OpenLLM-Ro/ro_sft_dolly
|
10 |
+
- OpenLLM-Ro/ro_sft_selfinstruct_gpt4
|
11 |
+
- OpenLLM-Ro/ro_sft_norobots
|
12 |
+
- OpenLLM-Ro/ro_sft_orca
|
13 |
+
- OpenLLM-Ro/ro_sft_camel
|
14 |
+
tags:
|
15 |
+
- TensorBlock
|
16 |
+
- GGUF
|
17 |
+
model-index:
|
18 |
+
- name: OpenLLM-Ro/RoMistral-7b-Instruct-2024-05-17
|
19 |
+
results:
|
20 |
+
- task:
|
21 |
+
type: text-generation
|
22 |
+
dataset:
|
23 |
+
name: RoMT-Bench
|
24 |
+
type: RoMT-Bench
|
25 |
+
metrics:
|
26 |
+
- type: Score
|
27 |
+
value: 4.99
|
28 |
+
name: Score
|
29 |
+
- type: Score
|
30 |
+
value: 5.46
|
31 |
+
name: First turn
|
32 |
+
- type: Score
|
33 |
+
value: 4.53
|
34 |
+
name: Second turn
|
35 |
+
- task:
|
36 |
+
type: text-generation
|
37 |
+
dataset:
|
38 |
+
name: RoCulturaBench
|
39 |
+
type: RoCulturaBench
|
40 |
+
metrics:
|
41 |
+
- type: Score
|
42 |
+
value: 3.38
|
43 |
+
name: Score
|
44 |
+
- task:
|
45 |
+
type: text-generation
|
46 |
+
dataset:
|
47 |
+
name: Romanian_Academic_Benchmarks
|
48 |
+
type: Romanian_Academic_Benchmarks
|
49 |
+
metrics:
|
50 |
+
- type: accuracy
|
51 |
+
value: 52.54
|
52 |
+
name: Average accuracy
|
53 |
+
- task:
|
54 |
+
type: text-generation
|
55 |
+
dataset:
|
56 |
+
name: OpenLLM-Ro/ro_arc_challenge
|
57 |
+
type: OpenLLM-Ro/ro_arc_challenge
|
58 |
+
metrics:
|
59 |
+
- type: accuracy
|
60 |
+
value: 50.41
|
61 |
+
name: Average accuracy
|
62 |
+
- type: accuracy
|
63 |
+
value: 47.47
|
64 |
+
name: 0-shot
|
65 |
+
- type: accuracy
|
66 |
+
value: 48.59
|
67 |
+
name: 1-shot
|
68 |
+
- type: accuracy
|
69 |
+
value: 50.3
|
70 |
+
name: 3-shot
|
71 |
+
- type: accuracy
|
72 |
+
value: 51.33
|
73 |
+
name: 5-shot
|
74 |
+
- type: accuracy
|
75 |
+
value: 52.36
|
76 |
+
name: 10-shot
|
77 |
+
- type: accuracy
|
78 |
+
value: 52.44
|
79 |
+
name: 25-shot
|
80 |
+
- task:
|
81 |
+
type: text-generation
|
82 |
+
dataset:
|
83 |
+
name: OpenLLM-Ro/ro_mmlu
|
84 |
+
type: OpenLLM-Ro/ro_mmlu
|
85 |
+
metrics:
|
86 |
+
- type: accuracy
|
87 |
+
value: 51.61
|
88 |
+
name: Average accuracy
|
89 |
+
- type: accuracy
|
90 |
+
value: 50.01
|
91 |
+
name: 0-shot
|
92 |
+
- type: accuracy
|
93 |
+
value: 50.18
|
94 |
+
name: 1-shot
|
95 |
+
- type: accuracy
|
96 |
+
value: 53.13
|
97 |
+
name: 3-shot
|
98 |
+
- type: accuracy
|
99 |
+
value: 53.12
|
100 |
+
name: 5-shot
|
101 |
+
- task:
|
102 |
+
type: text-generation
|
103 |
+
dataset:
|
104 |
+
name: OpenLLM-Ro/ro_winogrande
|
105 |
+
type: OpenLLM-Ro/ro_winogrande
|
106 |
+
metrics:
|
107 |
+
- type: accuracy
|
108 |
+
value: 66.48
|
109 |
+
name: Average accuracy
|
110 |
+
- type: accuracy
|
111 |
+
value: 64.96
|
112 |
+
name: 0-shot
|
113 |
+
- type: accuracy
|
114 |
+
value: 67.09
|
115 |
+
name: 1-shot
|
116 |
+
- type: accuracy
|
117 |
+
value: 67.01
|
118 |
+
name: 3-shot
|
119 |
+
- type: accuracy
|
120 |
+
value: 66.85
|
121 |
+
name: 5-shot
|
122 |
+
- task:
|
123 |
+
type: text-generation
|
124 |
+
dataset:
|
125 |
+
name: OpenLLM-Ro/ro_hellaswag
|
126 |
+
type: OpenLLM-Ro/ro_hellaswag
|
127 |
+
metrics:
|
128 |
+
- type: accuracy
|
129 |
+
value: 60.27
|
130 |
+
name: Average accuracy
|
131 |
+
- type: accuracy
|
132 |
+
value: 59.99
|
133 |
+
name: 0-shot
|
134 |
+
- type: accuracy
|
135 |
+
value: 59.48
|
136 |
+
name: 1-shot
|
137 |
+
- type: accuracy
|
138 |
+
value: 60.14
|
139 |
+
name: 3-shot
|
140 |
+
- type: accuracy
|
141 |
+
value: 60.61
|
142 |
+
name: 5-shot
|
143 |
+
- type: accuracy
|
144 |
+
value: 61.12
|
145 |
+
name: 10-shot
|
146 |
+
- task:
|
147 |
+
type: text-generation
|
148 |
+
dataset:
|
149 |
+
name: OpenLLM-Ro/ro_gsm8k
|
150 |
+
type: OpenLLM-Ro/ro_gsm8k
|
151 |
+
metrics:
|
152 |
+
- type: accuracy
|
153 |
+
value: 34.19
|
154 |
+
name: Average accuracy
|
155 |
+
- type: accuracy
|
156 |
+
value: 21.68
|
157 |
+
name: 1-shot
|
158 |
+
- type: accuracy
|
159 |
+
value: 38.21
|
160 |
+
name: 3-shot
|
161 |
+
- type: accuracy
|
162 |
+
value: 42.68
|
163 |
+
name: 5-shot
|
164 |
+
- task:
|
165 |
+
type: text-generation
|
166 |
+
dataset:
|
167 |
+
name: OpenLLM-Ro/ro_truthfulqa
|
168 |
+
type: OpenLLM-Ro/ro_truthfulqa
|
169 |
+
metrics:
|
170 |
+
- type: accuracy
|
171 |
+
value: 52.3
|
172 |
+
name: Average accuracy
|
173 |
+
- task:
|
174 |
+
type: text-generation
|
175 |
+
dataset:
|
176 |
+
name: LaRoSeDa_binary
|
177 |
+
type: LaRoSeDa_binary
|
178 |
+
metrics:
|
179 |
+
- type: macro-f1
|
180 |
+
value: 97.36
|
181 |
+
name: Average macro-f1
|
182 |
+
- type: macro-f1
|
183 |
+
value: 97.27
|
184 |
+
name: 0-shot
|
185 |
+
- type: macro-f1
|
186 |
+
value: 96.37
|
187 |
+
name: 1-shot
|
188 |
+
- type: macro-f1
|
189 |
+
value: 97.97
|
190 |
+
name: 3-shot
|
191 |
+
- type: macro-f1
|
192 |
+
value: 97.83
|
193 |
+
name: 5-shot
|
194 |
+
- task:
|
195 |
+
type: text-generation
|
196 |
+
dataset:
|
197 |
+
name: LaRoSeDa_multiclass
|
198 |
+
type: LaRoSeDa_multiclass
|
199 |
+
metrics:
|
200 |
+
- type: macro-f1
|
201 |
+
value: 67.55
|
202 |
+
name: Average macro-f1
|
203 |
+
- type: macro-f1
|
204 |
+
value: 63.95
|
205 |
+
name: 0-shot
|
206 |
+
- type: macro-f1
|
207 |
+
value: 66.89
|
208 |
+
name: 1-shot
|
209 |
+
- type: macro-f1
|
210 |
+
value: 68.16
|
211 |
+
name: 3-shot
|
212 |
+
- type: macro-f1
|
213 |
+
value: 71.19
|
214 |
+
name: 5-shot
|
215 |
+
- task:
|
216 |
+
type: text-generation
|
217 |
+
dataset:
|
218 |
+
name: LaRoSeDa_binary_finetuned
|
219 |
+
type: LaRoSeDa_binary_finetuned
|
220 |
+
metrics:
|
221 |
+
- type: macro-f1
|
222 |
+
value: 98.8
|
223 |
+
name: Average macro-f1
|
224 |
+
- task:
|
225 |
+
type: text-generation
|
226 |
+
dataset:
|
227 |
+
name: LaRoSeDa_multiclass_finetuned
|
228 |
+
type: LaRoSeDa_multiclass_finetuned
|
229 |
+
metrics:
|
230 |
+
- type: macro-f1
|
231 |
+
value: 88.28
|
232 |
+
name: Average macro-f1
|
233 |
+
- task:
|
234 |
+
type: text-generation
|
235 |
+
dataset:
|
236 |
+
name: WMT_EN-RO
|
237 |
+
type: WMT_EN-RO
|
238 |
+
metrics:
|
239 |
+
- type: bleu
|
240 |
+
value: 27.93
|
241 |
+
name: Average bleu
|
242 |
+
- type: bleu
|
243 |
+
value: 24.87
|
244 |
+
name: 0-shot
|
245 |
+
- type: bleu
|
246 |
+
value: 28.3
|
247 |
+
name: 1-shot
|
248 |
+
- type: bleu
|
249 |
+
value: 29.26
|
250 |
+
name: 3-shot
|
251 |
+
- type: bleu
|
252 |
+
value: 29.27
|
253 |
+
name: 5-shot
|
254 |
+
- task:
|
255 |
+
type: text-generation
|
256 |
+
dataset:
|
257 |
+
name: WMT_RO-EN
|
258 |
+
type: WMT_RO-EN
|
259 |
+
metrics:
|
260 |
+
- type: bleu
|
261 |
+
value: 13.21
|
262 |
+
name: Average bleu
|
263 |
+
- type: bleu
|
264 |
+
value: 3.69
|
265 |
+
name: 0-shot
|
266 |
+
- type: bleu
|
267 |
+
value: 5.45
|
268 |
+
name: 1-shot
|
269 |
+
- type: bleu
|
270 |
+
value: 19.92
|
271 |
+
name: 3-shot
|
272 |
+
- type: bleu
|
273 |
+
value: 23.8
|
274 |
+
name: 5-shot
|
275 |
+
- task:
|
276 |
+
type: text-generation
|
277 |
+
dataset:
|
278 |
+
name: WMT_EN-RO_finetuned
|
279 |
+
type: WMT_EN-RO_finetuned
|
280 |
+
metrics:
|
281 |
+
- type: bleu
|
282 |
+
value: 28.72
|
283 |
+
name: Average bleu
|
284 |
+
- task:
|
285 |
+
type: text-generation
|
286 |
+
dataset:
|
287 |
+
name: WMT_RO-EN_finetuned
|
288 |
+
type: WMT_RO-EN_finetuned
|
289 |
+
metrics:
|
290 |
+
- type: bleu
|
291 |
+
value: 40.86
|
292 |
+
name: Average bleu
|
293 |
+
- task:
|
294 |
+
type: text-generation
|
295 |
+
dataset:
|
296 |
+
name: XQuAD
|
297 |
+
type: XQuAD
|
298 |
+
metrics:
|
299 |
+
- type: exact_match
|
300 |
+
value: 43.66
|
301 |
+
name: Average exact_match
|
302 |
+
- type: f1
|
303 |
+
value: 63.7
|
304 |
+
name: Average f1
|
305 |
+
- task:
|
306 |
+
type: text-generation
|
307 |
+
dataset:
|
308 |
+
name: XQuAD_finetuned
|
309 |
+
type: XQuAD_finetuned
|
310 |
+
metrics:
|
311 |
+
- type: exact_match
|
312 |
+
value: 55.04
|
313 |
+
name: Average exact_match
|
314 |
+
- type: f1
|
315 |
+
value: 72.31
|
316 |
+
name: Average f1
|
317 |
+
- task:
|
318 |
+
type: text-generation
|
319 |
+
dataset:
|
320 |
+
name: STS
|
321 |
+
type: STS
|
322 |
+
metrics:
|
323 |
+
- type: spearman
|
324 |
+
value: 77.43
|
325 |
+
name: Average spearman
|
326 |
+
- type: pearson
|
327 |
+
value: 78.43
|
328 |
+
name: Average pearson
|
329 |
+
- task:
|
330 |
+
type: text-generation
|
331 |
+
dataset:
|
332 |
+
name: STS_finetuned
|
333 |
+
type: STS_finetuned
|
334 |
+
metrics:
|
335 |
+
- type: spearman
|
336 |
+
value: 87.25
|
337 |
+
name: Average spearman
|
338 |
+
- type: pearson
|
339 |
+
value: 87.79
|
340 |
+
name: Average pearson
|
341 |
+
- task:
|
342 |
+
type: text-generation
|
343 |
+
dataset:
|
344 |
+
name: XQuAD_EM
|
345 |
+
type: XQuAD_EM
|
346 |
+
metrics:
|
347 |
+
- type: exact_match
|
348 |
+
value: 23.36
|
349 |
+
name: 0-shot
|
350 |
+
- type: exact_match
|
351 |
+
value: 47.98
|
352 |
+
name: 1-shot
|
353 |
+
- type: exact_match
|
354 |
+
value: 51.85
|
355 |
+
name: 3-shot
|
356 |
+
- type: exact_match
|
357 |
+
value: 51.43
|
358 |
+
name: 5-shot
|
359 |
+
- task:
|
360 |
+
type: text-generation
|
361 |
+
dataset:
|
362 |
+
name: XQuAD_F1
|
363 |
+
type: XQuAD_F1
|
364 |
+
metrics:
|
365 |
+
- type: f1
|
366 |
+
value: 46.29
|
367 |
+
name: 0-shot
|
368 |
+
- type: f1
|
369 |
+
value: 67.4
|
370 |
+
name: 1-shot
|
371 |
+
- type: f1
|
372 |
+
value: 70.58
|
373 |
+
name: 3-shot
|
374 |
+
- type: f1
|
375 |
+
value: 70.53
|
376 |
+
name: 5-shot
|
377 |
+
- task:
|
378 |
+
type: text-generation
|
379 |
+
dataset:
|
380 |
+
name: STS_Spearman
|
381 |
+
type: STS_Spearman
|
382 |
+
metrics:
|
383 |
+
- type: spearman
|
384 |
+
value: 77.91
|
385 |
+
name: 1-shot
|
386 |
+
- type: spearman
|
387 |
+
value: 77.73
|
388 |
+
name: 3-shot
|
389 |
+
- type: spearman
|
390 |
+
value: 76.65
|
391 |
+
name: 5-shot
|
392 |
+
- task:
|
393 |
+
type: text-generation
|
394 |
+
dataset:
|
395 |
+
name: STS_Pearson
|
396 |
+
type: STS_Pearson
|
397 |
+
metrics:
|
398 |
+
- type: pearson
|
399 |
+
value: 78.03
|
400 |
+
name: 1-shot
|
401 |
+
- type: pearson
|
402 |
+
value: 78.74
|
403 |
+
name: 3-shot
|
404 |
+
- type: pearson
|
405 |
+
value: 78.53
|
406 |
+
name: 5-shot
|
407 |
+
---
|
408 |
+
|
409 |
+
<div style="width: auto; margin-left: auto; margin-right: auto">
|
410 |
+
<img src="https://i.imgur.com/jC7kdl8.jpeg" alt="TensorBlock" style="width: 100%; min-width: 400px; display: block; margin: auto;">
|
411 |
+
</div>
|
412 |
+
<div style="display: flex; justify-content: space-between; width: 100%;">
|
413 |
+
<div style="display: flex; flex-direction: column; align-items: flex-start;">
|
414 |
+
<p style="margin-top: 0.5em; margin-bottom: 0em;">
|
415 |
+
Feedback and support: TensorBlock's <a href="https://x.com/tensorblock_aoi">Twitter/X</a>, <a href="https://t.me/TensorBlock">Telegram Group</a> and <a href="https://x.com/tensorblock_aoi">Discord server</a>
|
416 |
+
</p>
|
417 |
+
</div>
|
418 |
+
</div>
|
419 |
+
|
420 |
+
## OpenLLM-Ro/RoMistral-7b-Instruct-2024-05-17 - GGUF
|
421 |
+
|
422 |
+
This repo contains GGUF format model files for [OpenLLM-Ro/RoMistral-7b-Instruct-2024-05-17](https://huggingface.co/OpenLLM-Ro/RoMistral-7b-Instruct-2024-05-17).
|
423 |
+
|
424 |
+
The files were quantized using machines provided by [TensorBlock](https://tensorblock.co/), and they are compatible with llama.cpp as of [commit b4242](https://github.com/ggerganov/llama.cpp/commit/a6744e43e80f4be6398fc7733a01642c846dce1d).
|
425 |
+
|
426 |
+
<div style="text-align: left; margin: 20px 0;">
|
427 |
+
<a href="https://tensorblock.co/waitlist/client" style="display: inline-block; padding: 10px 20px; background-color: #007bff; color: white; text-decoration: none; border-radius: 5px; font-weight: bold;">
|
428 |
+
Run them on the TensorBlock client using your local machine ↗
|
429 |
+
</a>
|
430 |
+
</div>
|
431 |
+
|
432 |
+
## Prompt template
|
433 |
+
|
434 |
+
```
|
435 |
+
<s>{system_prompt} [INST] {prompt} [/INST]
|
436 |
+
```
|
437 |
+
|
438 |
+
## Model file specification
|
439 |
+
|
440 |
+
| Filename | Quant type | File Size | Description |
|
441 |
+
| -------- | ---------- | --------- | ----------- |
|
442 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q2_K.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q2_K.gguf) | Q2_K | 2.719 GB | smallest, significant quality loss - not recommended for most purposes |
|
443 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q3_K_S.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q3_K_S.gguf) | Q3_K_S | 3.165 GB | very small, high quality loss |
|
444 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q3_K_M.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q3_K_M.gguf) | Q3_K_M | 3.519 GB | very small, high quality loss |
|
445 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q3_K_L.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q3_K_L.gguf) | Q3_K_L | 3.822 GB | small, substantial quality loss |
|
446 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q4_0.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q4_0.gguf) | Q4_0 | 4.109 GB | legacy; small, very high quality loss - prefer using Q3_K_M |
|
447 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q4_K_S.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q4_K_S.gguf) | Q4_K_S | 4.140 GB | small, greater quality loss |
|
448 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q4_K_M.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q4_K_M.gguf) | Q4_K_M | 4.368 GB | medium, balanced quality - recommended |
|
449 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q5_0.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q5_0.gguf) | Q5_0 | 4.998 GB | legacy; medium, balanced quality - prefer using Q4_K_M |
|
450 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q5_K_S.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q5_K_S.gguf) | Q5_K_S | 4.998 GB | large, low quality loss - recommended |
|
451 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q5_K_M.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q5_K_M.gguf) | Q5_K_M | 5.131 GB | large, very low quality loss - recommended |
|
452 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q6_K.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q6_K.gguf) | Q6_K | 5.942 GB | very large, extremely low quality loss |
|
453 |
+
| [RoMistral-7b-Instruct-2024-05-17-Q8_0.gguf](https://huggingface.co/tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF/blob/main/RoMistral-7b-Instruct-2024-05-17-Q8_0.gguf) | Q8_0 | 7.696 GB | very large, extremely low quality loss - not recommended |
|
454 |
+
|
455 |
+
|
456 |
+
## Downloading instruction
|
457 |
+
|
458 |
+
### Command line
|
459 |
+
|
460 |
+
Firstly, install Huggingface Client
|
461 |
+
|
462 |
+
```shell
|
463 |
+
pip install -U "huggingface_hub[cli]"
|
464 |
+
```
|
465 |
+
|
466 |
+
Then, downoad the individual model file the a local directory
|
467 |
+
|
468 |
+
```shell
|
469 |
+
huggingface-cli download tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF --include "RoMistral-7b-Instruct-2024-05-17-Q2_K.gguf" --local-dir MY_LOCAL_DIR
|
470 |
+
```
|
471 |
+
|
472 |
+
If you wanna download multiple model files with a pattern (e.g., `*Q4_K*gguf`), you can try:
|
473 |
+
|
474 |
+
```shell
|
475 |
+
huggingface-cli download tensorblock/RoMistral-7b-Instruct-2024-05-17-GGUF --local-dir MY_LOCAL_DIR --local-dir-use-symlinks False --include='*Q4_K*gguf'
|
476 |
+
```
|
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|
|
|
|
|
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|
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|
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|
|
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|
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version https://git-lfs.github.com/spec/v1
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|
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RoMistral-7b-Instruct-2024-05-17-Q5_K_M.gguf
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|
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version https://git-lfs.github.com/spec/v1
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|
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RoMistral-7b-Instruct-2024-05-17-Q5_K_S.gguf
ADDED
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|
|
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|
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version https://git-lfs.github.com/spec/v1
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|
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size 4997718368
|
RoMistral-7b-Instruct-2024-05-17-Q6_K.gguf
ADDED
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|
|
|
|
|
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|
|
|
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version https://git-lfs.github.com/spec/v1
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|
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size 5942067552
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ADDED
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|
|
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|
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version https://git-lfs.github.com/spec/v1
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size 7695860064
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