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[
Graph Recognize
]
Neural-network-recognition-system
DL : 0
使用说明 第一步:训练网络。使用训练样本进行训练。 第二步:识别。首先,打开图像(256色);再次,进行归一化处理,点击“一次性处理”;最后,点击“R”或者使用菜单找到相应项来进行识别。识别的结果显示在屏幕上,同时也输出到文件result.txt中。 该系统的识别率一般情况下为90 。 此外,也可以单独对打开的图片一步一步进行图像预处理工作,但要注意,每一步工作只能执行一遍,而且要按顺序执行。 具体步骤为:“256色位图转为灰度图”-“灰度图二值化”-“去噪”-“倾斜校正”-“分割”-“标准化尺寸”-“紧缩重排”。 注意,待识别的图片要与win.dat和whi.dat位于同一目录,这两文件保存训练后网络的权值参数。-Help The first step: Training Network. The use of training samples for training. Step two: identification. First, open the image (256 colors) again, normalized to deal with, click on the "one-time deal" Finally, click "R" or use the menu to find the corresponding items to be identified. Recognition results show up on the screen, but also output to a file Result.txt Medium. The system s recognition rate under normal circumstances was 90 . Alternatively, you could open a separate picture of the image pre-processing step by step job, but bearing in mind that each step can only run job again, but according to the order of implementation. Concrete steps as: "256-color bitmap to grayscale"- "two grayscale values of"- "De-noising"- "tip-tilt correction"- "split"- "the standardization of size"- "tight rearrangement." Note that to be identified with the picture win.dat and whi.dat located in the same directory, these two files after training the weights of the netw
Date
: 2025-12-23
Size
: 63kb
User
:
李晓国
[
Graph Recognize
]
DigitRec
DL : 0
使用说明 第一步:训练网络。使用训练样本进行训练。(此程序中也可以不训练,因为笔者已经将训练好的网络参数保存起来了,读者使用时可以直接识别) 第二步:识别。首先,打开图像(256色);再次,进行归一化处理,点击“一次性处理”;最后,点击“R”或者使用菜单找到相应项来进行识别。识别的结果显示在屏幕上,同时也输出到文件result.txt中。 该系统的识别率一般情况下为90 。 此外,也可以单独对打开的图片一步一步进行图像预处理工作,但要注意,每一步工作只能执行一遍,而且要按顺序执行。 具体步骤为:“256色位图转为灰度图”-“灰度图二值化”-“去噪”-“倾斜校正”-“分割”-“标准化尺寸”-“紧缩重排”。 注意,待识别的图片要与win.dat和whi.dat位于同一目录,这两文件保存训练后网络的权值参数。 具体使用请参照书中说明。-Help The first step: Training Network. Training in the use of training samples. (This process may or may not be trained because the training I have saved up a good network parameters, and readers can use to identify) Step two: identification. First, open the image (256 colors) again, normalized to, click on the "one-time deal" Finally, click "R" or use the menu to find the corresponding item in the Department. Recognition results showed on the screen, as well as output to a file in result.txt. Recognition rate of the system under normal circumstances was 90 . In addition, you can open a separate picture of the image pre-processing step by step, but it must be noted that the implementation of each step can only work once, but according to the order of implementation. Concrete steps as: "256-color bitmap to grayscale"- "grayscale binary"- "noise"- "tip-tilt correction"- "split"- "the standardization of size"- "tight rearrangement." Note that picture to be
Date
: 2025-12-23
Size
: 172kb
User
:
sombad
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