Makoto Kobayashi

88 papers A 2B 7C 8Misc 1Journal 26Unranked 41
YearRankTypeTitle / Venue / Authors
2026 J jnl
IEEE Trans. Aerosp. Electron. Syst.
Enping Zhou, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Masahiro Nishi, Takashi Watanabe
2026 J jnl
IEEE Trans. Cogn. Commun. Netw.
Frodouard Minani, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Masahiro Nishi, Takashi Watanabe
2025 J jnl
IEEE Trans. Wirel. Commun.
Frodouard Minani, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Masahiro Nishi, Takashi Watanabe
2025 conf
VR Workshops
Wanhee Cho, Makoto Kobayashi, Hiroyuki Kambara, Hirokazu Tanaka, Takahiro Kagawa, Makoto Sato, Hyeonseok Kim, Makoto Miyakoshi, Scott Makeig, John R. Iversen, Natsue Yoshimura
2025 C conf
ICCE
Minoru Watanabe, Makoto Kobayashi, Mitsutaka Isobe, Kunihiro Ogawa, Shingo Tamaki, Isao Murata, Sachie Kusaka
2025 J jnl
IEEE Open J. Commun. Soc.
Frodouard Minani, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Masahiro Nishi, Takashi Watanabe
2024 J jnl
IEEE Access
Enping Zhou, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Masahiro Nishi, Takashi Watanabe
2024 conf
ICCHP (2)
Ying Zhong, Masaki Matsubara, Atsuyuki Morishima, Makoto Kobayashi
2024 ed.
ICCHP (1)
Klaus Miesenberger, Petr Penáz, Makoto Kobayashi
2024 ed.
ICCHP (2)
Klaus Miesenberger, Petr Penáz, Makoto Kobayashi
2024 conf
ICCHP (1)
Yuhki Shiraishi, Rumi Hiraga, Daisuke Wakatsuki, Makoto Kobayashi, Takuya Suzuki, Ying Zhong, Takeaki Shionome
2024 B conf
GLOBECOM
Frodouard Minani, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Takashi Watanabe
2024 conf
CSEDU (2)
Chenyi Dai, Kojiro Hirose, Makoto Kobayashi, Shigenori Inagaki, Fusako Kusunoki
2024 conf
ICCHP (1)
Kei Kugai, Deborah I. Fels, Makoto Kobayashi
2023 conf
ICMU
Frodouard Minani, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Masahiro Nishi, Takashi Watanabe
2023 C conf
ICEC
Yihang Dai, Fusako Kusunoki, Makoto Kobayashi, Shigenori Inagaki
2023 J jnl
IEEE Access
Makoto Kobayashi, Takumi Uekumasu, Shunsuke Saruwatari, Takashi Watanabe
2023 conf
HCI (44)
Hiroyuki Ohshima, Makoto Kobayashi, Shigenobu Shimada
2022 conf
ICCHP-AAATE (2)
Makoto Kobayashi, Takuya Suzuki
2022 C conf
WINCOM
Enping Zhou, Makoto Kobayashi, Takuya Fujihashi, Md Abdul Alim, Shunsuke Saruwatari, Masahiro Nishi, Takashi Watanabe
2021 conf
CHI Extended Abstracts
Hiroyuki Ohshima, Makoto Kobayashi, Shigenobu Shimada
2021 conf
HCI (38)
Hotaka Takizawa, Genki Sekita, Makoto Kobayashi, Akihisa Ohya, Mayumi Aoyagi
2020 conf
ISMVL
Hisayuki Tatsumi, Yasuyuki Murai, Makoto Kobayashi, Iwao Sekita, Masahiro Miyakawa
2020 conf
HCI (9)
Ying Zhong, Masaki Matsubara, Makoto Kobayashi, Atsuyuki Morishima
2020 conf
ICETC
Makoto Kobayashi, Hisayuki Tatsumi
2020 conf
ICETC
Nobuko Kato, Masami Kitamura, Daisuke Wakatsuki, Makoto Kobayashi, Manabi Miyagi, Miki Namatame
2020 conf
LifeTech
Lili Ge, Hotaka Takizawa, Akihisa Ohya, Makoto Kobayashi, Mayumi Aoyagi
2020 conf
LifeTech
Kazusa Sanada, Hotaka Takizawa, Mayumi Aoyagi, Akihisa Ohya, Makoto Kobayashi
2020 conf
ICCHP (2)
Daisuke Wakatsuki, Makoto Kobayashi, Manabi Miyagi, Masami Kitamura, Nobuko Kato, Miki Namatame
2019 Misc conf
ICMLC
Yu Yoshino, Kazuki Nakada, Makoto Kobayashi, Hisayuki Tatsumi
2019 conf
VTC Fall
Chien-Hao Lee, Makoto Kobayashi, Hung-Yu Wei, Shunsuke Saruwatari, Takashi Watanabe
2019 J jnl
IEEE Access
Makoto Kobayashi, Shunsuke Saruwatari, Takashi Watanabe
2019 conf
HCI (33)
Miki Namatame, Masami Kitamura, Daisuke Wakatsuki, Makoto Kobayashi, Manabi Miyagi, Nobuko Kato
2019 conf
HCI (7)
Reika Omokawa, Makoto Kobayashi, Shu Matsuura
2019 conf
ICETC
Makoto Kobayashi, Manabi Miyagi, Daisuke Wakatsuki, Nobuko Kato, Miki Namatame
2018 B conf
SMC
Daisuke Wakatsuki, Rumi Hiraga, Makoto Kobayashi, Yuhki Shiraishi, Takeaki Shionome, Jianwei Zhang, Yoshiki Fukunaga, Manabi Miyagi, Atsuyuki Morishima
2018 conf
ICETC
Kazuki Nakada, Makoto Kobayashi, Yasuyuki Murai, Iwao Sekita, Hisayuki Tatsumi
2018 conf
ICCHP (2)
Makoto Kobayashi, Yoshiki Fukunaga, Shigenobu Shimada
2018 B conf
GLOBECOM
Takuya Fujihashi, Makoto Kobayashi, Keiichi Endo, Shunsuke Saruwatari, Shinya Kobayashi, Takashi Watanabe
2018 J jnl
IEEE Trans. Green Commun. Netw.
Makoto Kobayashi, Ryo Murakami, Kazuhiro Kizaki, Shunsuke Saruwatari, Takashi Watanabe
2017 B conf
PIMRC
Takumi Uekumasu, Makoto Kobayashi, Shunsuke Saruwatari, Takashi Watanabe
2017 J jnl
J. Adv. Comput. Intell. Intell. Informatics
Makoto Kobayashi
2017 J jnl
EURASIP J. Wirel. Commun. Netw.
Md Abdul Alim, Makoto Kobayashi, Shunsuke Saruwatari, Takashi Watanabe
2017 J jnl
IEICE Trans. Fundam. Electron. Commun. Comput. Sci.
Yohei Nakazawa, Hideo Makino, Kentaro Nishimori, Daisuke Wakatsuki, Makoto Kobayashi, Hideki Komagata
2017 conf
HCI (29)
Takuya Suzuki, Makoto Kobayashi, Yuji Nagashima
2017 J jnl
CoRR
Makoto Kobayashi, Ryo Murakami, Shunsuke Saruwatari, Takashi Watanabe
2016 conf
ICMU
Makoto Kobayashi, Md Abdul Alim, Shunsuke Saruwatari, Takashi Watanabe
2016 conf
GLOBECOM Workshops
Ryo Murakami, Makoto Kobayashi, Shunsuke Saruwatari, Takashi Watanabe
2016 conf
ICCHP (2)
Makoto Kobayashi
2016 J jnl
CoRR
Makoto Kobayashi, Shunsuke Saruwatari, Takashi Watanabe
2016 conf
HCI (27)
Takuya Suzuki, Makoto Kobayashi, Yuji Nagashima
2015 B conf
GLOBECOM
Makoto Kobayashi, Bryan C. K. Ng, Winston K. G. Seah, Shunsuke Saruwatari, Takashi Watanabe
2014 conf
ICCHP (2)
Takuya Suzuki, Makoto Kobayashi
2014 conf
ICCHP (1)
Makoto Kobayashi
2014 C conf
IECON
Makoto Kobayashi, Kazushi Nakano
2013 conf
ITNG
Makoto Kobayashi, Kazushi Nakano
2012 conf
ICCHP (2)
Makoto Kobayashi, Hiroki Minagawa, Tomoyuki Nishioka, Shigeki Miyoshi
2012 conf
ICCHP (1)
Makoto Kobayashi, Takuya Suzuki, Daisuke Wakatsuki
2011 J jnl
BMC Syst. Biol.
Henning Redestig, Miyako Kusano, Kaworu Ebana, Makoto Kobayashi, Akira Oikawa, Yozo Okazaki, Fumio Matsuda, Masanori Arita, Naoko Fujita, Kazuki Saito
2010 conf
ICCHP (2)
Makoto Kobayashi
2010 conf
ICCHP (2)
Makoto Kobayashi, Hiroshi Katoh
2010 J jnl
J. Medical Syst.
Kai Wang, Ping Li, Ling Chen, Ken Kato, Makoto Kobayashi, Kazunobu Yamauchi
2008 J jnl
Math. Log. Q.
Makoto Kobayashi, Akito Tsuboi
2008 J jnl
J. Medical Syst.
Kai Wang, Kazunobu Yamauchi, Ping Li, Hiroki Kato, Makoto Kobayashi, Ken Kato, Yoshiyuki Shimizu
2008 C conf
ICCHP
Makoto Kobayashi
2007 J jnl
BMC Syst. Biol.
Miyako Kusano, Atsushi Fukushima, Masanori Arita, Pär Jonsson, Thomas Moritz, Makoto Kobayashi, Naomi Hayashi, Takayuki Tohge, Kazuki Saito
2006 conf
ICPR (3)
Fumihiko Sakaue, Makoto Kobayashi, Tsuyoshi Migita, Takeshi Shakunaga
2006 C conf
ICCHP
Makoto Kobayashi
2006 ch.
Intelligent Paradigms for Assistive and Preventive Healthcare
Makoto Kobayashi, Tetsuya Watanabe
2004 C conf
ICCHP
Makoto Kobayashi, Tetsuya Watanabe
2003 J jnl
PsychNology J.
Miki Namatame, Makoto Kobayashi, Akira Harada
2003 conf
HCI (4)
Miki Namatame, Makoto Kobayashi, Akira Harada
2002 C conf
ICCHP
Makoto Kobayashi, Tetsuya Watanabe
2000 J jnl
Syst. Comput. Jpn.
Kenichi Maruyama, Makoto Kobayashi, Hirobumi Yamada, Yasuaki Nakano
1999 A conf
ICDAR
Hiromitsu Nishimura, Makoto Kobayashi, Minoru Maruyama, Yasuaki Nakano
1998 conf
APCHI
Takashi Sakairi, Masahide Shinozaki, Makoto Kobayashi
1998 A conf
CSCW
Makoto Kobayashi, Masahide Shinozaki, Takashi Sakairi, Maroun Touma, Shahrokh Daijavad, Catherine G. Wolf
1998 B conf
Document Analysis Systems
Kenichi Maruyama, Makoto Kobayashi, Hirobumi Yamada, Yasuaki Nakano
1998 conf
APCHI
Toshio Souya, Makoto Kobayashi, Satoshi Kawase, Katsumi Ohshima
1998 B conf
ICONIP
Taishin Nomura, Makoto Kobayashi, Takakazu Nakashima, Shunsuke Sato
1992 J jnl
SIGMETRICS Perform. Evaluation Rev.
Makoto Kobayashi
1990 J jnl
IEEE Commun. Mag.
Makoto Yoshida, Makoto Kobayashi, Haruo Yamaguchi
1990 conf
ICCL
David R. Hanson, Makoto Kobayashi
1989 J jnl
IEEE Trans. Computers
Makoto Kobayashi, Myron H. MacDougall
1986 J jnl
IEEE Trans. Computers
Makoto Kobayashi
1984 J jnl
IEEE Trans. Computers
Makoto Kobayashi
1983 J jnl
IEEE Trans. Computers
Makoto Kobayashi
1977 conf
International Computing Symposium
Domenico Ferrari, Makoto Kobayashi
redb/extractors/js_extractors/js_context.py
← Index redb/extractors/js_extractors/js_context.py python
"""Per-sample shared state for the JavaScript extractor pipeline.

A `JSContext` is built exactly once per JS sample (in `workers.py`) and threaded
into every extractor that runs against that sample. It owns the disk read, the
decoded source text, the line-split cache, the Shannon text-entropy figure, the
shared `scan_source()` results, and the pyjsparser AST. Each of those is
computed lazily through `cached_property` so an extractor that doesn't need a
particular artefact does not pay for it.

Without this object, every JS extractor instance redoes the same disk read,
decode, scan, and (for any consumer) AST parse. With it, every extractor
shares one set of results.

`JSExtractor.__init__` accepts the context via a `context=` kwarg; if absent
(e.g. unit tests instantiating an extractor directly with `source=...`) it
builds a fresh context from the constructor arguments. Either path produces a
fully-populated context, so extractor code can always rely on
`self._context.scan` / `self._context.ast` / etc.
"""

from __future__ import annotations

import math
from collections import Counter
from dataclasses import dataclass
from functools import cached_property
from typing import Any, Dict, List, Optional

import chardet

from redb.extractors.js_extractors.js_patterns import scan_source


def decode_source(raw_bytes: bytes) -> str:
    """Decode raw JS bytes to text, honouring BOMs and falling back to chardet.

    Mirrors the historical `JSExtractor._decode_source` logic so existing tests
    continue to round-trip identically.
    """
    if not raw_bytes:
        return ""

    if raw_bytes[:3] == b"\xef\xbb\xbf":
        return raw_bytes[3:].decode("utf-8", errors="replace")
    if raw_bytes[:2] in (b"\xff\xfe", b"\xfe\xff"):
        return raw_bytes.decode("utf-16", errors="replace")

    try:
        return raw_bytes.decode("utf-8")
    except UnicodeDecodeError:
        pass

    try:
        detected = chardet.detect(raw_bytes)
        if detected and detected.get("encoding"):
            return raw_bytes.decode(detected["encoding"], errors="replace")
    except Exception:
        pass

    return raw_bytes.decode("latin-1", errors="replace")


def _text_entropy(text: str) -> float:
    """Shannon entropy of the character distribution of `text`, rounded to 4dp."""
    if not text:
        return 0.0
    counter = Counter(text)
    length = len(text)
    entropy = 0.0
    for count in counter.values():
        p = count / length
        if p > 0:
            entropy -= p * math.log2(p)
    return round(entropy, 4)


@dataclass
class JSContext:
    """Shared raw materials for one JS sample, consumed by every JS extractor.

    Cheap attributes (raw_bytes, source) are populated eagerly by the factory.
    Expensive ones (scan, ast) are cached_property — computed on first access
    and reused across every extractor that holds the same context.

    `content_type` is the magika label (e.g. `"javascript"`) carried alongside
    the source so the new code_text_content writer (and any future generic
    text-content writer) can record it without re-running magika. Defaults to
    `"javascript"` because by construction this context type is JS-specific;
    workers.py supplies the actual magika value when it builds the context.
    """

    filepath: str
    raw_bytes: bytes
    source: str
    log: Any = None
    content_type: str = "javascript"
    # Populated by JSStringsExtractor.extract() (the decoded/reconstructed
    # strings — hex/unicode/charcode/base64/concat unpacked into plaintext).
    # Read post-loop by the IOC plumbing in workers.py so any IOCs hidden
    # behind those encodings get scraped from the decoded form. Stays None
    # if JSStringsExtractor didn't run for this sample.
    decoded_strings: Optional[list] = None

    @cached_property
    def lines(self) -> List[str]:
        return self.source.splitlines() if self.source else []

    @cached_property
    def text_entropy(self) -> float:
        return _text_entropy(self.source)

    @cached_property
    def scan(self) -> Dict[str, Dict[str, object]]:
        """Result of running scan_source() exactly once over self.source."""
        return scan_source(self.source) if self.source else {}

    @cached_property
    def ast(self) -> Optional[Any]:
        """Lazy pyjsparser AST. Returns None if the parser is missing or fails.

        Extractors should treat None AST as "fall back to regex" — every
        AST-consuming extractor already handles that path.
        """
        if not self.source:
            return None
        try:
            import pyjsparser
            return pyjsparser.parse(self.source)
        except ImportError:
            if self.log is not None:
                self.log.debug("pyjsparser not installed, AST analysis skipped")
        except Exception as e:
            if self.log is not None:
                self.log.warning(f"AST parsing failed for {self.filepath}: {e}")
        return None

    @cached_property
    def deobfuscated(self) -> "tuple[Optional[str], Optional[str]]":
        """Run the configured JS deobfuscator (with jsbeautifier fallback) once
        per sample and cache the result. Returns `(text, normalizer_used)` or
        `(None, None)` if neither path produced output.

        Computed lazily on first access — samples whose pipeline never reads
        this don't pay the subprocess cost.
        """
        from redb.extractors.js_extractors.js_deobfuscator import deobfuscate
        return deobfuscate(self.source, self.log)

    @cached_property
    def scan_deobfuscated(self) -> Dict[str, Dict[str, object]]:
        """Result of running scan_source() exactly once over the deobfuscated
        text, keyed by PATTERNS only (FEATURE_PATTERNS are not consulted by
        the dual-pass consumers). Empty dict when there is no deobfuscated
        text or it equals the raw source.

        Two extractors consume the post-deobf API surface:
        `JSSuspiciousAPIsExtractor` (for revealed_by_deobf rows) and
        `JSDeobfuscationExtractor` (for the new_apis_found diff). Caching here
        means we scan the deobfuscated text once instead of twice per sample.
        """
        from redb.extractors.js_extractors.js_patterns import PATTERNS
        deobf_text, _ = self.deobfuscated
        if not deobf_text or deobf_text == self.source:
            return {}
        return scan_source(deobf_text, patterns=(PATTERNS,))

    @cached_property
    def xray(self):
        """Run @nodesecure/js-x-ray once per sample and cache the result.

        Returns an `XRayResult` (always — the function collapses every failure
        path to an empty result so callers don't have to special-case missing
        Node, missing package, timeouts, or parse errors). The
        `JSFeaturesExtractor` reads it for the obfuscator family name and for
        corroborating warning kinds; the heuristic falls back cleanly when
        `xray.obfuscator is None`.
        """
        from redb.extractors.js_extractors.js_xray import run
        return run(self.source, self.log)

    @classmethod
    def from_path(
        cls,
        filepath: str,
        log: Any = None,
        source: Optional[str] = None,
        raw_bytes: Optional[bytes] = None,
        content_type: str = "javascript",
    ) -> "JSContext":
        """Build a context from disk. `raw_bytes` and `source` are optional
        overrides — useful when the caller has already read or decoded the file.
        `content_type` is the magika label workers.py dispatched on; it lands
        on the context for the code_text_content writer to record.
        """
        if raw_bytes is None:
            with open(filepath, "rb") as f:
                raw_bytes = f.read()
        if source is None:
            source = decode_source(raw_bytes)
        return cls(
            filepath=filepath,
            raw_bytes=raw_bytes,
            source=source,
            log=log,
            content_type=content_type,
        )