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Dive into the research topics where Sigit Adinugroho is active.

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Featured researches published by Sigit Adinugroho.


international conference communication and information systems | 2016

Eye Movement as Navigator for Disabled Person

Fitri Utaminingrum; M. Ali Fauzi; Yuita Arum Sari; Renaldi Primaswara; Sigit Adinugroho

Eyes is one of human organs which mostly still functions properly in disabled people when other parts of the body are disabled. This research propose a new framework to recognize and detected eye movement for handling position by considering the decision of both left and right eye. The sophisticated algorithm, Haar Cascade Algorithm was used for observing the area of eyes, then thresholding image using morphology is used to obtain the focus of eyes. The Hough Circle Transform with several rules could decide the handling position of eye movement. The performance of the pro-posed algorithm could reach over 80% in all dataset.


international conference on advanced computer science and information systems | 2016

Enhancing tomato clustering evaluation using color correction with improved linear regression in preprocessing phase

Yuita Arum Sari; Sigit Adinugroho; R. V. Hari Ginardi; Nanik Suciati

Color inconsistency poses many difficulties when capturing the same object using different image capture devices. Color is one of main parts in image preprocessing and therefore color correction is needed to calibrate images in order to produce consistent color values. In this paper, we propose a new color correction method by employing combined linear regression with stepwise model to enhance the quality of tomatoes ripeness clustering. Macbeth ColorChecker is needed as a reference image while a test image to be corrected is captured by an Android smartphone camera. There are 12 color levels to be compared between reference and test image. However, only a number of color levels are selected by k-means clustering. The selected color levels are utilized to build a linear regression algorithm with stepwise model. The result confirms that color correction and color constancy increase the clustering performance by 10% up to 40% for all possible configurations.


2017 5th International Symposium on Computational and Business Intelligence (ISCBI) | 2017

Onward movement detection and distance estimation of object using disparity map on stereo vision

Anggi Gustiningsih Hapsani; Dahnial Syauqy; Fitri Utaminingrum; Putra Pandu Adikara; Sigit Adinugroho

The object tracking is used as instruction controller in wheelchair that track the movement direction of object along time. The movement direction include left, right and onward. The left and right direction can be calculated by using the changing of x-coordinate of object in every sub sequence frame. The challenge is to determine the onward moving. The onward moving cannot calculate simply by coordinate of object in 2D. The solution to detect the onward moving is by using the stereo vision camera. We proposed a method to detect the onward movement and calculate the distance of object from camera using stereo vision. The detection rate is 83.1%. The estimation of object distance from the camera is actually only 3–4 meters away. The system detect that the distance of object is 0–5 meters in front of the camera. The determination of distance estimation is appropriate with the actual distance state.


2017 5th International Symposium on Computational and Business Intelligence (ISCBI) | 2017

Tomato ripeness clustering using 6-means algorithm based on v-channel otsu segmentation

Yuita Arum Sari; Sigit Adinugroho

Segmentation process in an essential part in image processing to obtain good preparation either for further process of data mining or object recognition. This paper proposes a new method of segmenting tomato image for clustering its ripeness. The tomato images are taken from three types of smartphone camera in various lighting condition with white background. When taking picture by using smartphone camera, the image is a bit darker or lighter in certain side, so the segmentation is involved to the following stage. Color transformation is needed at the first stage of preprocessing which converts RGB channel to YUV channel in order to apply histogram equalization. YUV is better to perceptual similarities in machine vision than RGB. Histogram equalization is applied in single Y channel of an image. Afterwards merge a V channel to YUV channel then transform it to RGB color model to observe the difference and convert it back to YUV for segmentation. Otsu combined with V channel thresholding is utilized to segment image better. To evaluate the segmentation performance, clustering method is computed based on retrieved color of segmented image using K-Means, in which k=6 because of there are 6 stages of tomato ripeness. Color feature extraction by means of R, G, a∗, and b∗ color channel are treated subsequently. Experimental results show the system yield 1% Mean Square Error in clustering the ripeness of tomatoes.


2017 5th International Symposium on Computational and Business Intelligence (ISCBI) | 2017

Development of computer vision based obstacle detection and human tracking on smart wheelchair for disabled patient

Fitri Utaminingrum; M. Ali Fauzi; Randy Cahya Wihandika; Sigit Adinugroho; Tri Astoto Kurniawan; Dahnial Syauqy; Yuita Arum Sari; Putra Pandu Adikara

People with physical disability such as quadriplegics may need a device which assist their mobility. Smart wheelchair is developed based on conventional wheelchair and is also generally equipped with sensors, cameras and computer based system as main processing unit to be able to perform specific algorithm for the intelligent capabilities. We develop smart wheelchair system that facilitates obstacle detection and human tracking based on computer vision. The experiment result of obstacle distance estimation using RANSAC showed lower average error, which is only 1.076 cm compared to linear regression which is 2.508 cm. The average accuracy of human guide detecting algorithm also showed acceptable result, which yield over 80% of accuracy.


2017 5th International Symposium on Computational and Business Intelligence (ISCBI) | 2017

Optimizing K-means text document clustering using latent semantic indexing and pillar algorithm

Sigit Adinugroho; Yuita Arum Sari; M. Ali Fauzi; Putra Pandu Adikara

Document clustering is an important tool to help managing the vast amount of digital text document. This paper introduces a new approach to cluster text document. First, text is preprocessed and indexed using inverted index. Then the index is trimmed using TF-DF thresholding. After that, Term Document Matrix is built based on TF-IDF. Next step uses Latent Semantic Indexing to extract important feature from Term Document Matrix. The following process is selecting seeds via Pillar algorithm. Based on determined seeds, K-Means clustering is performed. Experiment result proves that this approach outperforms standard K-Means document clustering.


TELKOMNIKA : Indonesian Journal of Electrical Engineering | 2018

Hybrid Head Tracking for Wheelchair Control Using Haar Cascade Classifier and KCF Tracker

Fitri Utaminingrum; Yuita Arum Sari; Putra Pandu Adikara; Dahnial Syauqy; Sigit Adinugroho


Jurnal Teknologi Informasi dan Ilmu Komputer | 2018

Pencarian Produk yang Mirip Melalui Automatic Online Annotation dari Web dan Berbasiskan Konten dengan Color Histogram Bin dan Surf Descriptor

Putra Pandu Adikara; Sigit Adinugroho; Yuita Arum Sari


2018 5th International Conference on Electrical and Electronic Engineering (ICEEE) | 2018

Leaves classification using neural network based on ensemble features

Sigit Adinugroho; Yuita Arum Sari


2018 5th International Conference on Electrical and Electronic Engineering (ICEEE) | 2018

Preprocessing of tomato images captured by smartphone cameras using color correction and V-channel Otsu segmentation for tomato maturity clustering

Yuita Arum Sari; Sigit Adinugroho

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M. Ali Fauzi

University of Brawijaya

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Nanik Suciati

Sepuluh Nopember Institute of Technology

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R. V. Hari Ginardi

Sepuluh Nopember Institute of Technology

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