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AN INTELLIGENT MODEL FOR THE OPERATIVE BLOCK (BLOC-OP)

U

University of Parma

Status

Unknown

Conditions

Artificial Intelligence in Operating Room

Study type

Observational

Funder types

Other

Identifiers

NCT05106621
1284/2020/OSS/AOUPR

Details and patient eligibility

About

Perioperative medicine is characterized by a very delicate path; it is composed, in fact, of a series of highly specialized clinical measures managed by various professionals (surgeons, anesthetists, intensivists, nurses, etc.), who work together to ensure the best quality of all phases of the path (preoperative , intra and postoperative). On the other hand, it is necessary to underline the huge resources needed to provide surgical services. Organizational optimization, based on specific analyzes, could lead to a more careful management of resources in this area, avoiding waste due to early closure of the operating room or unexpected extension of the same. In recent years, precisely to respond to the need to analyze large quantities of information, the use of artificial intelligence techniques, and in particular of machine learning, is becoming increasingly popular, a branch of artificial intelligence that aims, through the use of algorithms and statistical model, to infer new knowledge in a way automatic. Such technologies appear to possess excellent analytical skills both in the clinical and, above all, organizational fields. The data that are emerging in the literature on this issue, although still the first in this regard, seem to confirm this hypothesis.

Enrollment

142 estimated patients

Sex

All

Ages

18+ years old

Volunteers

No Healthy Volunteers

Inclusion criteria

all patients undergoing surgery who sign the informed consent form will be included.

Exclusion criteria

refusal of the patient to the study in question.

Trial design

142 participants in 1 patient group

Surgical Patients

Trial contacts and locations

1

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Central trial contact

Elena Bignami

Data sourced from clinicaltrials.gov

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