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Zhepei Wang

19 accepted papers

2026

Fast Iterative Region Inflation for Computing Large 2-D/3-D Convex Regions of Obstacle-Free Space

ICRA 2026poster

Convex polytopes have compact representations and exhibit convexity, which makes them suitable for abstracting obstacle-free spaces from various environments. Existing generation methods struggle with balancing high-quality output and efficiency. Moreover, another crucial requirement for convex poly…

2026

RETHINKING MUSIC CAPTIONING WITH MUSIC METADATA LLMS

ICASSP 2026poster

Music captioning, or the task of generating a natural language description of music, is useful for both music understanding and controllable music generation. Training captioning models, however, typically requires high-quality music caption data which is scarce compared to metadata (e.g., genre, mo…

Cited by 2SourcePDFScholar
2025

On Class Separability Pitfalls In Audio-Text Contrastive Zero-Shot Learning

ICASSP 2025accepted

Recent advances in audio-text cross-modal contrastive learning have shown its potential towards zero-shot learning. One possibility for this is by projecting item embeddings from pre-trained backbone neural networks into a cross-modal space in which item similarity can be calculated in either domain…

Cited by 0SourceScholar
2023

A Framework for Unified Real-Time Personalized and Non-Personalized Speech Enhancement

ICASSP 2023accepted

In this study, we present an approach to train a single speech enhancement network that can perform both personalized and non-personalized speech enhancement. This is achieved by incorporating a frame-wise conditioning input that specifies the type of enhancement output. To improve the quality of th…

Cited by 10SourceScholar
2023

A Linear and Exact Algorithm for Whole-Body Collision Evaluation via Scale Optimization

ICRA 2023poster

Collision evaluation is of essential importance in various applications. However, existing methods are either cumbersome to calculate or not exact. Therefore, considering the cost of implementation, most whole-body planning works, which require evaluating collision between robots and environments, s…

Cited by 17SourceScholar
2022

Bubble Planner: Planning High-speed Smooth Quadrotor Trajectories using Receding Corridors

IROS 2022poster

Quadrotors are agile platforms. With human experts, they can perform extremely high-speed flights in cluttered environments. However, fully autonomous flight at high speed remains a significant challenge. In this work, we propose a motion planning algorithm based on the corridor-constrained minimum…

Cited by 70SourceScholar
2022

Improved Singing Voice Separation with Chromagram-Based Pitch-Aware Remixing

ICASSP 2022accepted

Singing voice separation aims to separate music into vocals and accompaniment components. One of the major constraints for the task is the limited amount of training data with separated vocals. Data augmentation techniques such as random source mixing have been shown to make better use of existing d…

Cited by 0SourceScholar
2022

Star-Convex Constrained Optimization for Visibility Planning with Application to Aerial Inspection

ICRA 2022poster

The visible capability is critical in many robot applications, such as inspection and surveillance, etc. Without the assurance of the visibility to targets, some tasks end up not being complete or even failing. In this paper, we propose a visibility guaranteed planner by star-convex constrained opti…

Cited by 8SourceScholar
2021

EGO-Planner: An ESDF-Free Gradient-Based Local Planner for Quadrotors

RA-L 2021

Gradient-based planners are widely used for quadrotor local planning, in which a Euclidean Signed Distance Field (ESDF) is crucial for evaluating gradient magnitude and direction. Nevertheless, computing such a field has much redundancy since the trajectory optimization procedure only covers a very

Cited by 455SourcecodeScholar
2021

Fast-Racing: An Open-Source Strong Baseline for $\mathrm{SE}(3)$ Planning in Autonomous Drone Racing

RA-L 2021

With the autonomy of aerial robots advances in recent years, autonomous drone racing has drawn increasing attention. In a professional pilot competition, a skilled operator always controls the drone to agilely avoid obstacles in aggressive attitudes, for reaching the destination as fast as possible.

Cited by 17SourceScholar
2021

Generating Large-Scale Trajectories Efficiently using Double Descriptions of Polynomials

ICRA 2021poster

For quadrotor trajectory planning, describing a polynomial trajectory through coefficients and end-derivatives both enjoy their own convenience in energy minimization. We name them double descriptions of polynomial trajectories. The transformation between them, causing most of the inefficiency and i…

Cited by 38SourcecodeScholar
2021

Mapless-Planner: A Robust and Fast Planning Framework for Aggressive Autonomous Flight without Map Fusion

ICRA 2021poster

Maintaining a map online is resource-consuming while a robust navigation system usually needs environment abstraction via a well-fused map. In this paper, we propose a mapless local planner which directly conducts such abstraction on the unfused sensor data. A limited-memory data structure with a re…

Cited by 28SourceScholar
2021

Semi-Supervised Singing Voice Separation With Noisy Self-Training

ICASSP 2021accepted

Recent progress in singing voice separation has primarily focused on supervised deep learning methods. However, the scarcity of ground-truth data with clean musical sources has been a problem for long. Given a limited set of labeled data, we present a method to leverage a large volume of unlabeled d…

Cited by 0SourceScholar
2021

TGK-Planner: An Efficient Topology Guided Kinodynamic Planner for Autonomous Quadrotors

RA-L 2021

In this letter, we propose a lightweight yet effective Topology Guided Kinodynamic planner (TGK-Planner) for quadrotor aggressive flights with limited onboard computing resources. The proposed system follows the traditional hierarchical planning workflow, with novel designs to improve the robustness

Cited by 38SourcecodeScholar
2020

Alternating Minimization Based Trajectory Generation for Quadrotor Aggressive Flight

RA-L 2020

With much research has been conducted into trajectory planning for quadrotors, planning with spatial and temporal optimal trajectories in real-time is still challenging. In this letter, we propose a framework for large-scale waypoint-based polynomial trajectory generation, with highlights on its sup

Cited by 38SourcecodeScholar
2020

Two-Step Sound Source Separation: Training On Learned Latent Targets

ICASSP 2020accepted

In this paper, we propose a two-step training procedure for source separation via a deep neural network. In the first step we learn a transform (and it's inverse) to a latent space where masking-based separation performance using oracles is optimal. For the second step, we train a separation module…

Cited by 0SourceScholar