Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer

Introduction: Determining disease progression process and its affecting factors are of the most important issues in controlling the disease. This study aimed to predict the breast cancer progression as well as assessing the relationship between demographical and clinical factors. Materials and Meth...

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Main Authors: Morteza Hajihosseini, Payam Amini, Maryam Shahdoust, Javad Faradmal, Majid Sadeghyfar, Abdolazim Sedighi-Pashaki
Format: Article
Language:fas
Published: Semnan Univeristy of Medical Sciences 2016-09-01
Series:Majallah-i ̒Ilmī-i Dānishgāh-i ̒Ulūm-i Pizishkī-i Simnān
Subjects:
Online Access:http://koomeshjournal.semums.ac.ir/browse.php?a_code=A-10-3168-1&slc_lang=en&sid=1
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spelling doaj-b4bd442561c04325a8b57a6004ed987f2020-11-24T23:34:45ZfasSemnan Univeristy of Medical SciencesMajallah-i ̒Ilmī-i Dānishgāh-i ̒Ulūm-i Pizishkī-i Simnān1608-70462016-09-0118195101Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancerMorteza Hajihosseini0Payam Amini1Maryam Shahdoust2Javad Faradmal3Majid Sadeghyfar4Abdolazim Sedighi-Pashaki5 Introduction: Determining disease progression process and its affecting factors are of the most important issues in controlling the disease. This study aimed to predict the breast cancer progression as well as assessing the relationship between demographical and clinical factors. Materials and Methods: This retrospective cohort study was conducted on 527 Iranian females with breast cancer who underwent surgery, from 1995 to 2013 using checklists. The effect of the factors on death and tumor recurrence was assessed by log-normal model fitted into each transition of illness-death model which were used to investigate the relationship between demographic and clinical factors and survival time. Data analysis was performed using statistical R software version 3.1.1. The significance level of 0.05 was considered. Results: Evaluating the hazard of death without recurrence, the risk of death in patients over 50 years were higher than those under 50 (P=0.01). A tumor size of 2-5 cm was introduced as a death factor in recurrent patients (P=0.01).Age and type of tumor did not impact the hazard. Log-normal distribution was chosen for downtime between steps. Conclusion: Based on the results, age at diagnosis had significant impact on the risk of death before the first recurrence. Tumor size had a significant effect on death after tumor recurrence. In addition, Log-normal and disability models are appropriate tools to identify the factors influencing survival of patients with breast cancer.http://koomeshjournal.semums.ac.ir/browse.php?a_code=A-10-3168-1&slc_lang=en&sid=1Survival Analysis Breast Neoplasms Neoplasm Metastasis Statistical Models Disability Structure
collection DOAJ
language fas
format Article
sources DOAJ
author Morteza Hajihosseini
Payam Amini
Maryam Shahdoust
Javad Faradmal
Majid Sadeghyfar
Abdolazim Sedighi-Pashaki
spellingShingle Morteza Hajihosseini
Payam Amini
Maryam Shahdoust
Javad Faradmal
Majid Sadeghyfar
Abdolazim Sedighi-Pashaki
Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer
Majallah-i ̒Ilmī-i Dānishgāh-i ̒Ulūm-i Pizishkī-i Simnān
Survival Analysis
Breast Neoplasms
Neoplasm Metastasis
Statistical Models
Disability Structure
author_facet Morteza Hajihosseini
Payam Amini
Maryam Shahdoust
Javad Faradmal
Majid Sadeghyfar
Abdolazim Sedighi-Pashaki
author_sort Morteza Hajihosseini
title Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer
title_short Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer
title_full Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer
title_fullStr Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer
title_full_unstemmed Application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer
title_sort application of log-normal parametric model in disability structure to predict metastasis and death due to breast cancer
publisher Semnan Univeristy of Medical Sciences
series Majallah-i ̒Ilmī-i Dānishgāh-i ̒Ulūm-i Pizishkī-i Simnān
issn 1608-7046
publishDate 2016-09-01
description Introduction: Determining disease progression process and its affecting factors are of the most important issues in controlling the disease. This study aimed to predict the breast cancer progression as well as assessing the relationship between demographical and clinical factors. Materials and Methods: This retrospective cohort study was conducted on 527 Iranian females with breast cancer who underwent surgery, from 1995 to 2013 using checklists. The effect of the factors on death and tumor recurrence was assessed by log-normal model fitted into each transition of illness-death model which were used to investigate the relationship between demographic and clinical factors and survival time. Data analysis was performed using statistical R software version 3.1.1. The significance level of 0.05 was considered. Results: Evaluating the hazard of death without recurrence, the risk of death in patients over 50 years were higher than those under 50 (P=0.01). A tumor size of 2-5 cm was introduced as a death factor in recurrent patients (P=0.01).Age and type of tumor did not impact the hazard. Log-normal distribution was chosen for downtime between steps. Conclusion: Based on the results, age at diagnosis had significant impact on the risk of death before the first recurrence. Tumor size had a significant effect on death after tumor recurrence. In addition, Log-normal and disability models are appropriate tools to identify the factors influencing survival of patients with breast cancer.
topic Survival Analysis
Breast Neoplasms
Neoplasm Metastasis
Statistical Models
Disability Structure
url http://koomeshjournal.semums.ac.ir/browse.php?a_code=A-10-3168-1&slc_lang=en&sid=1
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