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John's friend Peter purchases a new high resolution monitor with dimension |
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**W** * **H** where **W** is the number of pixels in each row (i.e. width) and |
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**H** is the number of pixels in each column (i.e. height). |
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However, there are **N** dead pixels on the monitor. The **i**-th dead pixel |
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is located at (**x**[**i**], **y**[**i**]). (0, 0) is the top-left pixel and |
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(**W** \- 1, **H** \- 1) is the bottom-right pixel. The locations of the dead |
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pixels could be generated by 6 given integers **X**, **Y**, **a**, **b**, |
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**c** and **d** by the following rules. If 2 pixels are at the same location, |
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they are considered the same. It is possible that there are less than **N** |
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**distinct** dead pixels. |
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* **x**[0] = **X** |
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* **y**[0] = **Y** |
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* **x**[**i**] = (**x**[**i** \- 1] * **a** \+ **y**[**i** \- 1] * **b** \+ 1) % **W** (for 0 < **i** < **N**) |
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* **y**[**i**] = (**x**[**i** \- 1] * **c** \+ **y**[**i** \- 1] * **d** \+ 1) % **H** (for 0 < **i** < **N**) |
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Peter connects his monitor to his computer and opens an image with dimension |
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**P** (width) * **Q** (height). How many unique positions can the image be |
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placed so that it can be displayed perfectly (i.e. all pixels of the picture |
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are shown on the monitor)? The image cannot be rotated. |
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### Input |
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The first line contains an integer **T**, which is the number of test cases. |
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Then **T** test cases follow. Each test case contains 11 integers **W**, |
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**H**, **P**, **Q**, **N**, **X**, **Y**, **a**, **b**, **c**, **d**. |
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### Output |
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For each of the test cases numbered in order from 1 to **T**, output "Case #", |
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followed by the case number (with 1 being the first test case), followed by ": |
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", followed by an integer which is the number of different possible positions |
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for the poster. |
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### Constraints |
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* 1 ≤ **T** ≤ 20 |
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* 1 ≤ **W**, **H** ≤ 40 000 |
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* 1 ≤ **P** ≤ **W** |
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* 1 ≤ **Q** ≤ **H** |
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* 1 ≤ **N** ≤ min(1 000 000, **W** * **H**) |
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* 1 ≤ **a**, **b**, **c**, **d** ≤ **100** |
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* 0 ≤ ** X ** < ** W ** |
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* 0 ≤ ** Y ** < ** H ** |
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