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Project Accession: IBIAP_1000000021
Title: C-NMC: B-lineage acute lymphoblastic leukaemia (B-ALL): A blood cancer dataset
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Description: Development of computer-aided cancer diagnostic tools is an active research area owing to the advancements in deep-learning domain. Such technological solutions provide affordable and easily deployable diagnostic tools. Leukaemia, or blood cancer, is one of the leading cancers causing more than 0.3 million deaths every year. In order to aid the development of such an AI-enabled tool, we collected and curated a microscopic image dataset, namely C-NMC, of more than 15000 cancer cell images at a very high resolution of B-Lineage Acute Lymphoblastic Leukaemia (B-ALL). The dataset is prepared at the subject-level and contains images of both healthy and cancer patients. So far, this is the largest (as well as curated) dataset on B-ALL cancer in the public domain. C-NMC is also available at The Cancer Imaging Archive (TCIA), USA and can be helpful for the research community worldwide for the development of B-ALL cancer diagnostic tools. This dataset was utilized in an international medical imaging challenge held at ISBI 2019 conference in Venice, Italy. In the published article, we have presented a detailed description and challenges of this dataset. We have also presented benchmarking results of all the methods applied so far on this dataset.
Publications: https://doi.org/10.1016/j.medengphy.2022.103793
Associated Codes (URL only): N/A
Funding agency: Ministry of Communication and IT, Govt. of India and Department of Science and Technology (DST), Govt. of India.
Grant Number: 1(7)2014-ME&HI and EMR2016006183
Ethics Statement: Download
Any Other Information : In the directory named "C-NMC_test_final_phase_data", all image files that originally had the .bmp extension have been renamed so that .bmp is now replaced with "_final.bmp". The original version of this dataset is available at The Cancer Imaging Archive (TCIA; https://www.cancerimagingarchive.net/collection/c-nmc-2019/). The TCIA citation is: Mourya, S., Kant, S., Kumar, P., Gupta, A., & Gupta, R. (2019). ALL Challenge dataset of ISBI 2019 (C-NMC 2019) (Version 1) [dataset]. The Cancer Imaging Archive. https://doi.org/10.7937/tcia.2019.dc64i46r
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Acknowledgments: Authors gratefully acknowledge the research funding support (Grant Number: 1(7)2014-ME&HI) from the Ministry of Communication and IT, Govt. of India and research grant funding (Grant No.: EMR2016006183) from the Department of Science and Technology (DST), Govt. of India, for this research work. AG and SG thank the Infosys Centre for Artificial Intelligence, IIIT-Delhi and SG thanks University Grant Commission (UGC), Govt. of India for the UGC-Senior Research Fellowship.

Sr.No First name Last name Email Organization Designation
1 Ritu Gupta drritugupta@gmail.com Laboratory Oncology Unit, Dr. B.R.A.IRCH, AIIMS, New Delhi, India Principal Investigator
2 Shiv Gehlot shivg@iiitd.ac.in SBILab, Department of ECE, IIIT-Delhi, Delhi, India Research Scholar
3 Anubha Gupta anubha@iiitd.ac.in SBILab, Department of ECE, IIIT-Delhi, Delhi, India Principal Investigator

Study Accession: HISTOS_1000000025
Title: An image dataset of B-lineage acute lymphoblastic leukaemia (B-ALL) and healthy hematogones
Imaging Type: Histopathology (HISTO)
Imaging Sub-type: Diagnostic Pathology
Summary: This study provides a dataset of white blood cancer, namely, B-Lineage Acute Lymphoblastic Leukaemia (B-ALL) along with the healthy hematogones. The dataset has been split at the subject-level into the training and the test sets. Specifically, the training set contains 12528 cell images of 8491 cancer lymphoblasts and 4037 healthy blasts (also called as hematogones). Cancer cells belong to 60 cancer patients, while normal cells belong to 41 subjects. The test set contains 2586 cell images belonging to 8 healthy (or control) subjects and 9 cancer patients. The training and test set are distributed such that there are no common subjects between the two sets. This dataset was released during the IEEE ISBI 2019 medical imaging challenge in three phases: 1) initial train phase, 2) preliminary test phase, and 3) final test phase. In the initial train phase, the dataset was released for all the registered participants for training their classification networks. In the preliminary test phase, a preliminary test set was released to allow the testing of the performance of the participants’ models. The top participants in this phase were shortlisted to move to the next phase of the challenge and were also provided the ground truth (GT) of the preliminary test set for improving the performance in the next round. Hence, the participants had the GT of the initial training data and the preliminary stage’s test data. Together, this data was used by the participants for the training of their models and tested on the final test data released in the final test phase to decide the ranking on the leaderboard. The dataset arranged in these three phases was accordingly released publicly for use by the future researchers. The GT of training and preliminary test data is released, while those of test data have not been released.
Keywords: Acute lymphoblastic leukaemia; Cancer dataset; Image database; Computer aided diagnosis; Microscopic image; Cancer diagnostics
Additional / Any Other Information: Download
Release Date: Aug. 25, 2025
Access Licence Type: Open Access

Table 1. The sample types registered under this study are as follows:
Sample Type IDOrganismTaxon IDBiological EntityLateralitySource TissueSource Cell/Cell-lineCell Organelle
HISTOSMT_10000000053Homo sapiens 9606 Blood and BoneNot ApplicableBone marrowCancer lymphoblastsN/A
HISTOSMT_10000000054Homo sapiens 9606 Blood and BoneNot ApplicableBone marrowHematogonesN/A
HISTOSMT_10000000055Homo sapiens 9606 Blood and BoneNot ApplicableBone marrowN/AN/A

Table 2. The samples registered under this study are as follows:
Sample Type ID Sample ID Method used for Sample Collection Cell Phenotype Studied Data Collection Duration ICD-11 Code (patient health condition) Image category/label Sample Source Subject type
HISTOSMT_10000000053 HISTOSM_10000273170 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273171 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273172 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273173 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273174 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273175 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273176 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273177 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273178 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273179 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273180 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273181 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273182 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273183 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273166 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273167 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273187 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273188 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273189 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL
HISTOSMT_10000000053 HISTOSM_10000273190 Bone marrow aspiration N/A Two years 2B33.3&XH81V3 B-ALL Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India B-ALL

Table 3. The experiment types registered under this study are as follows:
Experiment Type IDInstrument NameInstrument TypeManufacturerModel
HISTOET_10000000022MicroscopeDigital MicroscopeNikonNikon DS-5M


Experimental Design Summary (HISTOET_10000000022)
The dataset was prepared at the Laboratory Oncology Unit, Dr. B.R.A IRCH, All India Institute of Medical Sciences (AIIMS), New Delhi, India. The slides were prepared using the subjects’ bone marrow aspirate. The slides containing normal cells were prepared from the control subjects, while those containing cancer cells were prepared from subjects newly diagnosed with B-ALL. The slide preparation process involved staining with the Jenner-Giemsa stain for highlighting the cells of interest. The slides were then placed under a NIKON microscope mounted with NIKON DS5M Camera to capture microscopic images of size 2560 × 1920 pixels in the BMP format. Since the dataset was prepared over a period of two years, the microscopic images captured from slides exhibited a lot of stain color variability from subject to subject. Hence, these images were stain color normalized with the GCTI-SN method using a reference image to counter stain color variability. Next, these cell images were segmented from the microscopic images using our inhouse segmentation pipeline. Cells lying in clusters were also segmented successfully into separate cell images and stored. Since the cell images are of different sizes, a constant size of 350 × 350 is achieved for every image by padding columns and rows of zero intensity after aligning every cell at the center of its respective image. The presented dataset is, so far, the largest cell imaging dataset in the public domain for B-ALL cancer classification problem containing 15,114 cell images.

Acquired Images Annotation Description (HISTOET_10000000022)
The cells of interest were marked in the microscopic images by an expert onco-pathologist. This is to note that multiple types of cells including lymphoblasts, plasma cells, red blood cells and so on, are visible in a microscopic image captured from the slide of the bone marrow aspirate or the peripheral blood smear. Since B-ALL cancer is caused by the lymphoblasts, only these cells are required to be marked and segmented to check whether they are healthy or cancer cells. At this stage, it is fairly easy for an expert onco-pathologist to identify different cells. Hence, the lymphoblasts were marked by only one expert onco-pathologist.

Table 4. The experiments registered under this study are as follows:
Sample ID Experiment Type ID Experiment ID Image type (Original / Derived / Unknown) Any Other Information Staining Type Images Magnification Tissue / Tumor Fixative Used Camera Used to Capture Images Data Repository Name (If already deposited in another repository) Dataset Split Type (Training / Validation / Test) Licence Type (original source) Stain Normalization Method
HISTOSM_10000273872 HISTOET_10000000022 HISTOE_10000247514 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273873 HISTOET_10000000022 HISTOE_10000247515 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273874 HISTOET_10000000022 HISTOE_10000247516 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273875 HISTOET_10000000022 HISTOE_10000247517 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273876 HISTOET_10000000022 HISTOE_10000247518 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273877 HISTOET_10000000022 HISTOE_10000247519 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273878 HISTOET_10000000022 HISTOE_10000247520 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273879 HISTOET_10000000022 HISTOE_10000247521 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273880 HISTOET_10000000022 HISTOE_10000247522 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273881 HISTOET_10000000022 HISTOE_10000247523 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273883 HISTOET_10000000022 HISTOE_10000247525 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273884 HISTOET_10000000022 HISTOE_10000247526 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273886 HISTOET_10000000022 HISTOE_10000247528 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273888 HISTOET_10000000022 HISTOE_10000247529 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273889 HISTOET_10000000022 HISTOE_10000247530 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273890 HISTOET_10000000022 HISTOE_10000247531 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273891 HISTOET_10000000022 HISTOE_10000247532 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273892 HISTOET_10000000022 HISTOE_10000247533 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273893 HISTOET_10000000022 HISTOE_10000247534 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN
HISTOSM_10000273894 HISTOET_10000000022 HISTOE_10000247535 Derived N/A Jenner-Giemsa N/A N/A NIKON DS5M The Cancer Imaging Archive (TCIA) Initial Train Set CC BY 3.0 GCTI-SN

Experiment ID Image File Name (with path) Image Preview Image Size
HISTOE_10000245215PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_28_10_all.bmp Unable to preview image
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HISTOE_10000245216PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_28_11_all.bmp Unable to preview image
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HISTOE_10000245217PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_1_all.bmp Unable to preview image
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596K
HISTOE_10000245218PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_2_all.bmp Unable to preview image
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HISTOE_10000245219PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_3_all.bmp Unable to preview image
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596K
HISTOE_10000245220PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_4_all.bmp Unable to preview image
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HISTOE_10000245221PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_5_all.bmp Unable to preview image
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596K
HISTOE_10000245222PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_6_all.bmp Unable to preview image
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HISTOE_10000245223PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_7_all.bmp Unable to preview image
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HISTOE_10000245224PKG-C-NMC_2019/C-NMC_training_data/fold_0/all/UID_48_29_8_all.bmp Unable to preview image
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