From a0e288f0dca328b8b12592cc19da9bb7c29646f4 Mon Sep 17 00:00:00 2001
From: AlexeyAB <alexeyab84@gmail.com>
Date: Mon, 30 Apr 2018 23:17:49 +0000
Subject: [PATCH] Increased speed of darknet.py. Fixed functions related to resize_image().

---
 README.md |    4 ++--
 1 files changed, 2 insertions(+), 2 deletions(-)

diff --git a/README.md b/README.md
index 7634daf..f0549c9 100644
--- a/README.md
+++ b/README.md
@@ -413,12 +413,12 @@
   * increase network resolution in your `.cfg`-file (`height=608`, `width=608` or any value multiple of 32) - it will increase precision
 
   * recalculate anchors for your dataset for `width` and `height` from cfg-file:
-  `darknet.exe detector calc_anchors data/obj.data -num_of_clusters 9 -width 416 -heigh 416`
+  `darknet.exe detector calc_anchors data/obj.data -num_of_clusters 9 -width 416 -height 416`
    then set the same 9 `anchors` in each of 3 `[yolo]`-layers in your cfg-file
 
   * desirable that your training dataset include images with objects at diffrent: scales, rotations, lightings, from different sides, on different backgrounds
 
-  * desirable that your training dataset include images with non-labeled objects that you do not want to detect - negative samples without bounded box
+  * desirable that your training dataset include images with non-labeled objects that you do not want to detect - negative samples without bounded box (empty `.txt` files)
 
   * for training with a large number of objects in each image, add the parameter `max=200` or higher value in the last layer [region] in your cfg-file
   

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